Back to Journal

JSM Veterinary Medicine and Research

Phenotypic Characterization of Local Chickens (Gallus Gallus Domesticus) In Bekwarra Cross River State, Nigeria

[ ISSN : 2689-1565 ]

Abstract Citation Introduction Material and Method Result and Discussions Body Measurement Traits of Indigenous Nigerian chickens Conclusions References
Details

Received: 24-Apr-2019

Accepted: 25-Jun-2019

Published: 26-Jun-2019

Odah, E. O1*, Daikwo, S. I1 , Mbap S.T2 , and Okpanachi U3

1Department of Animal Production and Health, Federal University Wukari, Taraba State Nigeria

2Department of Animal Production, Abubakar Tafawa Balewa University, Bauchi State Nigeria

3Department of Animal Production, University of Jos, Plateau State Nigeria

Corresponding Author:

Odah, E. O, Department of Animal Production and Health, Federal University Wukari, Taraba State Nigeria, Tel:+2348037347887;

Keywords

Phenotypic; Characterization; Local chickens; Bekwarra

Abstract

This study was conducted in Bekwarra Local Government Area of Cross River State, Nigeria, to identify and determine some characteristics of local chickens. A total of 530 adult chickens of both sexes and 111 fresh eggs were carefully examined at seven administrative council wards of the local government. About 43.00% of the birds observed were male while 57.00% were females. Statistical Package for Social Sciences (SPSS) was employed to carry out descriptive statistics on qualitative and quantitative data of identified chicken population in the respective areas.The result showed predominantly pea comb type (38.90%). Eye color was black (44.72%), light-brown (14.91%), dark-brown (12.83%), dark-red (11.30%), orange (11.32%), and pink (1.10%). For plumage colour, 36.23% were classified as black, 20.00% as white, 13.02% as brown, 9.43% as red, 7.93% as multicolored, 3.21% as black-white, 3.02% as grey, 2.45% as grey-white, 2.26% as black-brown, 0.94% as ash-black and 0.57% as ash respectively. Most chickens (31.90%) had yellow shanks, while 19.60%, 18.50%, 11.30%, 6.40%, 5.10%, 3.40%, 3.00%, 0.40%, had white, greenish, milky, ash, dark-ash, pink, red, and light brown respectively. An average live, body circumference, body length, shank, head and neck length were; 1.80kg, 42.7 ± 0.03cm,55.8 ± 0.21cm, 12.20 ± 0.4cm, 5.1 ± 0.03cm, and 8.9 ± 0.5cm. The average egg width, egg length and egg weight were; 5.2 ± 0.03cm, 7.6 ± 0.01cm, 31.6 ± 0.05g with 12 clutch size and 3 clutches per hen per year. The indigenous chicken population in Bekwarra, Nigeria, is mostly black with black eyes, white eggs and yellow shank. There were distinctive differences in almost all the measurable traits parameters examined. These distinctions provide the basis for which they could be classified and improved.

Citation

Odah EO, Daikwo SI, Mbap ST, Okpanachi U (2019) Phenotypic Characterization of Local Chickens (Gallus Gallus Domesticus) In Be kwarra Cross River State, Nigeria. JSM Vet Med Res 2: 7.

Introduction

The Nigerian livestock population is estimated to be 165.3 million [1] However, the native chicken constitutes 80% of the120 million poultry birds in Nigeria leaving Guinea fowl 11.20%, duck 5.70%, turkey 2.00% and others 1.10% [2] Native chicken constitutes about 45.8-83.2% of the total meat consumed in Africa. This meat is characterized by excellent taste, flavor, juicy, tender, inviting, nutritious, appetizing with low fat and cholesterol. It contains 51% water and 320 calories, 100g of meat compared to exotic broilers with 71% water and 151 calories, [3,4]. More than 80% of the total indigenous chicken population in Nigeria are found in the rural households. Their products are preferred by majority of Nigerians because of the leanness and suitability for special dishes [5]These outputs (egg and meat) are readily available to both the rural and urban areas and serves significantly as a rich source of protein in diets.

Indigenous chickens are hardy, can withstand harsh climate under minimal management, possess ability to incubate and hatch on their own, brood and scavenge for their food, with appreciable immunity from endemic diseases, and can thrive effectively well under inadequate nutrition at different agro ecological zones. They possess distinct genetic resources which significantly influence their production potentials, survivability and adaptation. They survive on crop residue, weed seeds, insects, kitchen and agro- industrial waste [6] Its production is popular in the rural area as high cost of formulated feed, health management, lack of electricity and poor brooding technique limits industrial poultry production. Local chickens are however important as it account for the nutritional needs of the family, small cash flow reserve during celebration from the sales of eggs, meat and live birds. They are also useful for religious and recreational purposes and can be harnessed for rural poverty reduction. They are kept to supplement meals, honor guest as gifts, supply manure for crops and to serve as a means of checking time [5]The sales of local chickens (live birds and other products) contribute about 15.38% of rural household income in Nigeria. Some are potential egg producers, while others are known for their excellent meat quality and or for dual purposes. These species represent a valuable resource for livestock development because their extensive genetic diversity allows for rearing poultry under varied environmental conditions, providing a range of products and functions.

The regular breeding failure in livestock production can be attributed to the gross absence of comprehensive information on animal genetic resources. This could however be controlled through detailed characterization studies of a sub population of local chickens in a large population. [7] observed that local chickens are the most thriving industry for small holder farmers in Nigeria and contributes about 25.6% of the country economy. This therefore, indicates that efforts to improve upon local chickens would directly alleviate rural poverty and boost the nation’s economy.

In Nigeria, indigenous chickens were characterized along the genetic lines of plumagecolour and feather type as(normal and frizzled), body structure as (naked neck and dwarf types) and colour variants as (black, white, brown, mottled etc.) The genetic resources embedded in local poultry of Bekwarra, still await full exploitation that could provide the basis for improvement to produce breeds that can adapt to local conditions for the benefits of farmers. This suggests that characterizing local chicken would help to assess their genetic resources for improvement and selection purposes This study was carried out to identify and determine some characteristics of local chickens in Bekwarra Local Government, Cross River State, Nigeria, to provide a comprehensive information on their genetic resourcesand production potential.

Material and Method

Study area

This study was carried out in Bekwarra, Northern Cross River State, Nigeria. The state is located at latitude 8o41’N and 14o5’E of the equator with a total population of 4,151,193 and land mass of 69,436km2 (NPC, 2001). Bekwarra lies within latitude 6o 41’38’’N and 8o 71’E of the equator and occupies 306 km2 with a total population of 105,822 [8]. The area is a thick rain forest zone, characterized by minimum temperature of 10-22.3oC in December which could rise to a maximum of 18.5-35.8oC in February. The altitude of the study area ranges from 400-3000mm above sea level. Annual rainfall is between 1500- 1849.3mm in areas with lower altitude and 1556-1960mm in the high lands areas. It has low intensity of light due to thick forest with a relative humidity ranging between 61% in February, 92% in August and yearly average of 95% [9].

The vegetation of the zone represents an interface between temperate a tropical rainforest which favors livestock and crop production which are the main activities in the area. Bekwarra Local Government Area is made of has 10 administrative council wards namely: Gakem, Ugboro, Ikparikobo, Nyanya, Abuochiche, Ibiaragidi, Ukpah, Ububa, Beten and Afrike.

Sampling technique and procedure

Seven council wards was carefully studied, with four villages from each of; Nyanya, Gakem, Ugboro, Beten, Abuochiche, Ibiaragidi, and Ukpah. The sample frame was four villages per council ward, and 4-5 households per village. In each household, 5-7 matured chickens (hens and cocks) were sampled for quantitative and qualitative traits. Fresh eggs collected from chicken in the sampled area were also considered for external egg quality traits.

Purposive and multistage sampling technique was adopted in selecting the wards and villages with large population of local chickens for close observations. This was done based on wide information provided by the community heads of each wards. Households and matured birds were selected at random from the list of households that have been keeping local chickens for more than three years.

Data collection

Primary data was collected with the aid of 208 well-structured questionnaires. Multistage sampling technique was employed for selecting respondents. The first stage involved the selection of seven wards from the local government area. The second stage involved the selection of villages from the selected wards, and the third stage involved the selection of 5-6 households in each of the selected villages. Adult local chicken in the selected households were then observed for both qualitative and quantitative trait measurements. Fresh eggs were collected at random from the sampled house for egg quality measurements. Data was collected from a total of 530 adult local chicken and 111eggs. The population was composed of males 222 and 308 females. Among the households sampled, birds were observed individually for phenotypic traits including; plumage features, eye, shank, egg and beak colour, comb as well as feather type. Body spur and comb length and height were measured. Other body and egg traits were examined. These parameters were determined as thus:

Shank Length (SL) - the length of the torso-metatarsus from the hock joint to the pad, with the aid of a calibrated measuring tape in centimeter. Kneel Length (KL) –was be considered as the length from the v-joint to the end of the sternum using a meter rule or measuring tape in centimeter (Cm). Wing Length (WL) –was taken as the length of the wing from the scapula joint to the last digit of the wing in centimeter (Cm).Body Length (BL) – was determined with tape as the distance from the tip of the beak over the neck through the trunk in centimeter (Cm). Egg length (EL) – was determined as the distance from one end of the egg to another in centimeter.Egg Width (EW) – was measured as the widest diameter using micrometer screw gauge in centimeter. Body Girth (BG) – was taken as circumference of the breast region with graduated measuring tape in centimeter (Cm).Egg Wight (EWT) –gg weight was measured using a sensitive digital scale ‘ohaus (D110 max: 4100g) balance in grams (g).

Data analysis

Statistical Package for Social Sciences (SPSS) was employed to carry out descriptive statistics on both qualitative and quantitative data of indigenous chicken population identified in the study areas.

Result and Discussions

Table 1 presents the physical characteristics of indigenous chicken in Bekwarra, Northern Cross River state Nigeria. The commonest plumage colour is black with 36.23%, followed by white with 20.00%, brown 13.02%, 9.43% red, 7.93% multicolored, 3.21% black-white 3.21%, grey 3.02%, grey-white 2.45%, black brown 2.26%, 0.94% reddish-black and ash-black, and 0.57% ash.

Table 1: Physical characteristics of Indigenous Chickens in Bekwarra, Nigeria.

COLOUR

FREQUENCY

PERCENTAGE

PLUMAGE COLOUR

 

 

Black

192

36.23

White

106

20.00

Brown

69

13.02

Red

50

9.43

Multi- colored

42

7.93

Black- white

17

3.21

Grey

16

3.02

Grey- white

13

2.45

Black-brown

12

2.26

Reddish –black

5

0.94

Ash-black

5

0.94

Ash

3

0.57

 

N(530)

100.00

SHANK COLOUR

 

 

Yellow

169

31.90

Black

104

19.60

White

98

18.50

Greenish

60

11.30

Milky

34

6.40

Ash

27

5.10

Dark-ash

18

3.40

Pink

16

3.00

Red

2

0.40

Light brown

2

0.40

 

N(530)

100.00

BEAK COLOUR

259

48.90

Yellow

112

21.10

Brown

59

11.10

Ash

48

9.10

White

36

6.80

Pink

10

1.90

Orange

6

1.10

 

N(530)

100.00

EYE COLOUR

 

 

Black

237

44.72

Light-brown

79

14.91

Dark-brown

68

12.83

Dark-red

60

11.32

Orange

59

11.13

Pink

27

5.09

 

N(530)

100.00

FEATHER TYPE

 

 

Normal

303

57.20

Naked neck

131

24.70

Frizzled

96

18.10

 

N(530)

100.00

COMB TYPE

 

 

Pea

206

38.90

Single

128

24.20

Rose

98

18.50

Double

80

13.70

Walnut

25

4.70

 

N(530)

100.00

Variation in phenotype is what characterizes local chickens [10,11] in Botswana observed indigenous chicken to be multi colored, but predominately black. [12,13] reported similar observation for the indigenous chickens of Plateau state Nigeria. These reports are in agreement with those obtained in this study. The explanation is that a number of genes interacts to determine plumage colour [14] and probably because indigenous chickens have not been artificially selected. Yellow and black were the most frequent shank colours with 31.90% and19.60% respectively. Other variant colours like white and greenish were next with 18.50% and 11.30% which were followed closely by milky 6.40%, ash 5.10%, dark-ash 3.40%, pink 3.00%, red 0.40% and light -brown red 0.40%. The observed occurrence of yellow and black in this study is comparable to evidence in literatures [15-17]. The variations in shank colour observed are most probably due to the difference between free ranging local chickens in different geographical areas, and the combination of pigments and gene responsible for colour determination. The presence of yellow shank is due to dietary carotenoid pigments in the epidermis when melanin was absent. The occurrence of black results from the presence of melanic pigment in the dermis and epidermis. The presence of black pigments in the epidermis might account for the greenish shank. In the absence of both pigments, the shanks were white. The varying shade of milky, ash and other colours was due probably to the interactions of the dermis-epidermis pigments.

The low frequency of white shank colour in the areas contradicts [18,19]who reported 47.92% for chickens in Botswana. The proportion of black shank 19.60% observed in this study was lower than the findings of [20] who reported 42.20%.

The frequent eye colour among chicken populations studied were black and light–brown with 44.72% and 14.91% respectively. This is followed by dark-brown 12.83%, dark –red 11.32%, orange11.13%, and 5.09% pink. This is consistent with the reports by [21].

Eye colour characteristics depend on carotenoid pigmentation and blood circulation in the eye. Black (48.90%) was the most wildly distributed beak color in the study area. This was followed by yellow, brown, ash, white, pink and ash with 21.10%, 11.10%, 9.10%, 6.80%, 1.90%, and 1.10%, respectively.

Pea comb type predominated with 38.90%, next was single 24.20%, rose18.50%, double13.70%, and walnut 4.70%. The predominant pea comb in this study area tallies with the reports by [22] for chickens from Dekina. In contrast, single combed chickens were reported to be predominant, followed by rose [23 25] for indigenous chicken in Nigeria. [26,27], observed similar reports in Asia and Bangladesh. The occurrence of different comb types might be due to the interactions of different genes responsible for comb expression.

Combs are vital for heat loss in birds [28]. This implies large comb would provide an efficient means of heat dissipation. Therefore, high proportion of pea comb type observed in the study area suggests selections advantage. There was difference in comb size with sex the of birds. Both small, medium and large comb occurred at variable proportions in Nigeria. Chickens with small comb were frequent followed by medium and large. Small and medium size comb was predominant with female and male were observed with large combs. This shows that male birds with large combs are significantly resistant to heat effect than female.

According to [29] reproductive hormone such as follicle stimulating hormone (FSH) have pleiotropic effect on the size of face and head appendages. Hence, the occurrence of small sized comb in the population suggests that the size of the face and head appendages of chickens observed could have been influenced by reproductive hormones. This might also, be attributed to sexual dimorphism since all male chickens in the study area appeared to have larger combs than females.

Normal feather type (57.20%) was the most prevalent among the chicken population studied. Frizzle was 18.10% with naked neck chicken 24.70%. This is in line with the findings of [30] for indigenous chicken in Tanzania. Possible explanation for rare expression of frizzled character in the study area is that frizzing gene is a rare mutant with recessive effects and lack selection advantage in the population. Also, frizzled feather pattern tends to provide poor insulation in cold climate

Body Measurement Traits of Indigenous Nigerian chickens

Table 2 shows the mean values and standard error (SE) of bodymeasurement traits of local chicken. The mean population of hen, cock, growers and chicken owned per house hold were 5.1 ± 0.09, 3.4 ± 0.02, 4.1 ± 0.04 and 3.8 ± 0.03 respectively. The average body weight of 1.5 ± 0.05Kg for hen and 2.0 ± 0.01Kg for cock observed in this study were higher than 1.3Kg reported by [31,32] This study confirmed the research findings on local chickens by [33] in Plateau State and could be compared with the findings of [34] for traditional scavenging chickens of Uganda. However, [35]reported much higher weight (3.0Kg) in Yobe for commercial birds. The higher weight is expected because commercial birds grows faster than local birds. Low body weight observed in this study can be attributed poor management and genetic make-up of birds. Variations in the weight of male and female birds in the studied area are in harmony with previous reports by [36-41]for Nigerian, Tanzania, Eastern Europe, and Ethiopia native chicken populations. This however indicates that the live weight of an animal is sex dependent.

Table 2: Mean and standard error (SE) of Body Measurement Traits of Indigenous chickens.

Characters

Mean (x)

Standard error (SE)

Number of chickens

Hen

 

5.1

 

0.09

Cock

3.4

0.02

Growers

4.1

0.04

Chicks

3.8

0.03

Body weight (Kg)

 

 

Hen

1.5

0.05

Cock

2.0

0.01

Body parameters (Cm)

 

 

Body circumference

42.7

0.03

Body length

55.8

0.21

Shank length

12.2

0.04

Keel length

9.8

0.02

Wing length

25.0

0.70

Tail length

14.7

1.71

Neck length

8.9

0.50

Head length

5.1

0.03

Beak length

3.8

0.10

Comb length

3.9

0.60

Spur length

1.3

0.18

Wattle length

3.3

0.21

Wattle height

3.3

0.01

Comb height

5.2

0.23

     

Differential growth rate of animals account for the heavier weight of male to female birds observed in Nigeria. This further buttress the fact that indigenous chickens in Bekwarra, Nigeria has not yet undergone gene mixing with exotic lines else their weight would have been quite higher.

The mean shank length (12.2 ± 0.04cm) of adult chickens found in the study area is higher comparable with 11.3cm reported by [42] and 10.0 ± 0.29cm reported by for local chicken population in Jos North, Nigeria. This length further contradicts previous report by who indicated shorter shank length range of 5.5 ± 0.1Cm, 7.43 ± 7.36Cm and 7.54 ± 0.9Cm and 9.1Cm for local chickens of North Central, Eastern Nigeria and Ethiopia.

The long shank length observed in this study results from breed difference, prevalence of major gene and extensive husbandry system which allows birds to scavenge long distance for their food.

The comb length, comb height, wattle length and height in the study varied with sex. The explanation for this is due probably to age, genetic constitution, and breed difference. Indigenous birds in Bekwarra possess a body circumference of 42.7 ± 0.03cm, with short spur. This is consistent with the research findings by who reported 31.50 ± 0.33cm and 37.08 ± 0.24cm for the indigenous chickens in Ayingba and DekinaKogi State. It however contradicted the report of who indicated 13.05 ± 19.15cm for five genetic groups of native chickens, and Mancha, 2004 who reported 26.90cm and 27.50cm, and 38.1Cm for necked neck, and frizzled normal feathered chicken sin Plateau state. This variation might be attributed to genetic composition of birds and feed availability.

Chickens in the study area have long body, wing, and tail length (55.8 ± 0.21cm, 25.0 ± 0.70cm, 14.70 ± 0.03cm) respectively. Long body length (55.8 ± 0.21cm) observed in this study higher contradicted 27.0 ± 01cm reported by for native chickens in Botswana, 33.8 ± 0.50cm by for birds in Kogi state, 36.70cm, 37.60cm and 39.2cm indicated by for naked neck, frizzled and normal chicken, respectively.

The comb length (3.9 ± 0.6cm), comb height (5.2 ± 0.23cm), and wattle length (3.30 ± 0.21cm) and wattle height (3.30 ±0 .01cm) in the study varied among birds and sex. The explanation for this due probably to age, genetic constitution, and breed difference.

Moderate neck and keel length were observed with 8. 9 ± 0.50cm, and 9.8 ± 0.02cm, respectively. The mean value and standard error of wattle and comb height of chickens studied were 3.3 ± 0.01cm, and 5.2 ± 0.23cm.

Table 3 shows the Pearson correlations among some egg traits of local chickens in Bekwarra, Nigeria. The direct effect of egg weight and number of chickens hatched was positive and significant (r= 0.263; p<0.01). There existed a positive association between the number of clutches per hen per year and clutch size per year, numbers of chicken hatched per year, egg weight and egg length though not significant (r= 0.134; r= 0.066; r= 0.020 and r= 0.116).

Table 3: Correlation coefficients among Egg Traits of Local Chickens in Nigeria.

Traits

CHY

CTS

NOH

EGW

EWT

CTS

.134ns

 

 

 

 

NOH

.060ns

.815**

 

 

 

EGW

.263**

.103ns

.120ns

 

 

EWT

.020ns

.074 ns

.129ns

.078 ns

 

EGL

.116 ns

.160ns

.061ns

.248**

.159ns

* = (p<0.05)                                 ** = (p<0.01)                            ns = Not significant

CHY= Number of clutches per hen per year, CTS= Clutch size per hen, NOH= Number of chickens hatched per hen, EGW = Egg weight in gram, EGL = Egg length in centimeter, EWT =Egg with in centimeter.

Relatedness among measurable Egg Trait of Indigenous Nigerian Chickens

Highly significant and positive relationship existed between clutch size per year and the number of chickens hatched.

Egg weight, egg width and egg length are associated with clutch size per hen per year but not significant (r= 0.103; r= 0.074 and r= 0.160). Similar relationship also existed between the number of chickens hatched per hen per year and egg weight, width and length (r= 0.120; r= 0.129; r= 0.061). Egg weight is directly affected by egg length (r= 0.248 p<0.01) and positively related to egg weight though not significant (r= 0.078). Egg width was positive and related to egg length though non- significant.

That there was no significance between clutch size and other egg parameters reported in this current study agreed with the research findings Similarly, that egg width has non- significant correlations with egg length contradicted the reports by The high correlation of egg length with egg weight in this study implies that the selection for egg length could improve egg weight. Similarly, the high value of correlation between clutch size and the number of chickens hatched observed in this study implies that a unit change in the clutch, increases the number of chickens hatched per hen per year. The correlation between the number clutch per hen per year and egg width in this study is consistent with the evidence in literatures by This high correlation suggests that selection for egg number could improve egg weight.

Table 4 represents some of the egg production traits of indigenous Nigerian chickens. The average mean weight, length and width of local chickens observed were31.6 ± 0.30g, 7.6 ± 0.10cm, and 5.2 ± 0.30cm. The chickens exhibited 83.7 ± 1.30% hatchability. Mean clutch size per hen was 12.5 ± 0.30 and 2.5 ± 1.3 was the number of clutches per hen per year. Mean value of 12.5 ± 0.09 eggs per clutch recorded in this study agreed with the reports of for native chicken kept under extensive system. This study compares favorably with the reports of who observed an average clutch size of 10 eggs in Jos Northern, Nigeria and contradicted the findings of Mapiye and Sibanda, 2005 who indicated (7.86-8.52) eggs per clutch in who reported 21.12 eggs for the local chicken population in Benue and Nasarawa state, respectively. The mean egg weight 31.6 ± 0.05g observed in this study agreed with who reported 31.61g but lesser than 37.99 ± 0.8g for local chicken under intensive system reported by and 39.0 ± 0.1g, and 37.1 ± 0.1g for guinea savannah and rain forest zones of Nigeria by The variation in egg weight observed in this study is due to difference in bird genetics, management system, locations, feed quality and availability, disease factors and seasonal variations. Seasonal variations affect feed quality and availability and directly influence egg production and egg quality in birds.

Table 4: Egg Production Traits of Indigenous Nigerian chickens.

Egg production traits

Mean (x)

Standard error (SE)

Clutch size

12.5

0.30

No. of clutch/hen/year

2.5

1.30

Hatchability (%)

83.7

0.02

Egg weight (Cm)

31.6

0.05

Egg length (Cm)

7.6

0.01

Egg width (Cm)

5.2

0.30

Egg Production Traits of Indigenous Nigerian chickens

Eggs from frizzled chicken in Bekwarra were heavier than necked neck and that of normal feathered chickens under the same conditions. This aligned completely with the results reached by which indicated that frizzled and necked neck chicken laid heavier egg compared to normal feathered birds. The variation in egg weight in relation to plumage characters is due to thermo regulation efficiency and genetic make-up of the different birds.

The high percentage hatchability (83.7%) of local chickens observed in Bekwarra is similar to 88.24% reported by Nwosu and Birds in Bekwarra, Northern Cross River State exhibits higher hatchability potential compared to 69.3% for the native chicken population in Dekina, Kogi State indicated by and 56.0% by for birds in Western Nigerian. These differences are due primarily to variation in egg shell characteristics, egg size, brooding management and egg storage.

Management system, nutrition, and genetic composition of the sub-populations could account for the variation in eggs length, width, clutch size and number of clutches per hen per year in this study. Predominance of white coloured eggs followed by brown coloured observed in this study was also reported by This must have resulted from the fact that native chickens are kept with little or no controlled breeding and the frequent mating of white with brown plumage colour population.

Conclusions

The indigenous chicken population in Bekwarra revealed heterogeneity in most of morphological and phenotypic traits considered. Further work can be done to standardize the phenotypic characters observed in the study area. Notwithstanding, it can be maintained at the interim that the local chickens in Bekwarra, Nigeria are multicolored. They are pea combed, black eyed and beak, with yellow shank.

References

1. Adebambo OA. Indigenous poultry breeds genetic improvement for meat and eggs. Proceedings of the 1st International Poultry Summit, Feb. 20-25, Ota, 2005.

2. Adedokun SA, Sonaiya EB. Comparison of the performance of Nigeria Indigenous chicken from three agro-ecological zones. Livestock Research for Rural Development. 2001; 3: 34-39.

3. Adejoh EB. Characterization of Local Chicken in Dekina Local Government Area of Kogi State. B. AgricProject Report, Kogi State University, Anyigba unpublished. 2006.

4. Atteh JO. Rural poultry production in western middle belt Region of Nigeria. In: African Network for rural poultry Development. Sonaiya, E. B (ED) proceeding of international workshop on rural poultry in Africa. Nov. 13-16, 1989 Ile -Ife 211-217. 1990.

5. Ayorinde KL. Native fowl as a reservoir for genomes and major genes with direct and indirect effects on the adaptability and their potential for tropically oriented breeding plans: A review. Anim. Res. Dev. 2002; 33: 63-79.

6. Badubi SS, Rabereng M, Marumo M. Morphological characteristics and food availability for indigenous chickens in Botswana. Livestock for Rural Development. 2006; 16.

7. Bhuiyan CB, Koop WJ Grossman M. Characterization of poultry egg production using a multiple phasic approach. Breeding and Genetics. 2006; 71: 39-405.

8. Bogale K. in- situ characterization of local chicken for functional traits and production systems for Forgeaye district, Ambara regional state.  M.SC thesis submitted to Department of Animal science, school of post graduate studies, Hamaraya University. 2008.

9. Crawford RD. Poultry genetic resources, evaluation, diversity and conservation (chapter 2): in: poultry breeding and genetics. Crawford, R.D. (Ed). Elservier, New York- Tokyo. 1123p. Brazil, pp.: 1990; 10-17.

10. CRSMA. (Cross River State Ministry of Agriculture). Annual Agricultural bulletins. Vol.35 (12). Calabar, Nigeria. 2002.

11. Daikwo IS, Okpe AA, Ocheje JO. Phenotypic characterization of local chicken in Dekina department of Animal production, Faculty of Agriculture, kogi state university, Anyigba, Nigeria. International journal of poultry science. 2011; 10: 444-447.

12. Egahi JO, Dim NI, Momoh OM, Gwaza DS. Variations in Qualitative Traits in Nigerian local chickens. Int. J. Poultry Sci. 2010;10: 978-979

13. Eskinder NO. A survey of poultry production system in the humid tropics of south eastern Nigeria. In: proceedings of an international workshop on rural poultry development in American held at Obafemi Awolowo University, Ile-Ife 12-16 Nov. 1989. 236-242.

14. FAO, Small scale poultry production; Animal production and health technical shed. No 1. Rome, Italy. 2004.

15. Fayeye TR, Adeshiyan AB Olugbami AA. Egg traits hatchability and early growth performance of the Fulani- ecotype chicken livestock Research for rural development. 2005; 17: 1-7.

16. Fayeye TR, Ayorinde KL, Ojo V, Adesina OM. Frequency and influence of some major genes on body weight and size parameters of Nigerian Local chicken. Livestock Research for rural development. 2006; 18: 1-8.

17. Gueye EF. Production and consumption trend in Africa. World Poult. 2003; 19: 12-14.

18. Halima H. Phenotypic and genetic characteristics of indigenous chicken population in north West Ethiopia Ph.D. thesis; university of the Free State. Bloemfontein, South Africa. 2007.

19. Ibe SN. Utilizing local poultry genetic resources in Nigeria. Proc. 4th world congress on genetics applied to livestock production Edinburgh, Scotland. 1990.

20. Ikeobi CON, Ozoje MO, Adebambo OA, Adenowo JA. Frequencies of feet feathering and comb types genes in the Nigerian Local chicken. Journal of Tropical Agricultural Science. 2001; 24: 147-150.

21. Ikeobi CON, Ozoje MO, Adebambo OA, Adenowo JA, Osonowo OA. Genetic differences in the performance of local chicken in south-western Nigeria. Nig. J. Genetic. Vol XI: 1996; 30-39

22. Kitalyi AJ. Village chicken production in developing countries; what does the future hold: world Animal Review. 1997; 82: 48-53.

23. Mancha YP. Characterization of local chickens in northern part of the Jos plateau, A Ph.D. Thesis Animal production programme, School of Agriculture, ATBU, Bauchi 7-86. 2004.

24. Mapiye C, Sibanda S. Constrains and opportunities of village chicken production systems in the small holder sector of Rushinga district of Zimbabwe. Livestock Research for rural development. 2005; 16.

25. Mathur PK. Specific use of high yielding strains carrying major genes for improving performance of local fowls in the tropics (case study: Upper Egypt). Proceedings DLG symposium on poultry production in developing countries. Hameln, Germany. June. 1989; 19-22.

26. Mbap ST, H Zakar. Characterization of local chickens in Yobe state, Nigeria. In; the role of Agriculture in poverty alleviation. Abubakar, M.M, Adegdola, T.A and Butswat, I.S.R. (Ed). Proceedings of the 34th  Annual Conference of Agricultural Society of Nigeria. 15-19 Oct, Bauchi pp126-131. 2000.

27. Momoh OM, Nwosu CC. Egg production of two Nigerian local chicken ecotype under improved management. Proceedings 32nd Annual conference of Nigeria society for animal production, March 18-22, University of Calabar Nigeria. 2000; 278-281.

28. Momoh OM, CC Nwosu. Genetic evaluation of growth traits in crosses between two ecotypes of Nigeria Local Chicken. Livest. Res. Rural Dev. 2008; 20: 10.

29. Momoh OM, NG Ehiobu, CC Nwosu. Egg production of two Nigerian local chicken ecotypes under improved management. Proceedings 32nd Nov. 1999. College of Agriculture conference hall Ahmadu Bello University, Zaria. 2007.

30. Mopate E, Lony J, Characteristics of rural chicken production in Apac and Kumi districts of Uganda. Paper presented at the NARO scientific conference 5-10 Dec. 2001. Kampala, Uganda.

31. National Population Commission NPC, 2001.

32. Nwagu BI Incidence and influence of Naked neck and frizzle genes on body size of local chickens M.Sc. thesis, University of Ilorin, Nigeria. 2002.

33. Nwosu CC, Omeje S. Short-term egg production parameters of the local chicken: Proceedings of an International Workshop held in Ile-Ife, Nigeria, November 13 - 16, 1989. Thelia house, Ile-Ife. 1985; 62-71.

34. Nwosu CC, Gowon R, obioha FC, Omeje SSI, Akpan IA, Onuora GI. A biometrical study of the conformation of the native chickens in Nig. Journal of ani. Prod. 1985; 12:141-146

35. Okpeku M, Orheruata, Imumorin IG, phenotypic genetic variations of local chickens of Edo state Nigeria. In; Nigerian livestock, a goldmine and for economic growth and food security. Proceedings of the 28th Annual Conference of the Nigerian society of animal production. March, 16-20 2003.

36. Peters SO, EA Omidiji, CON Ikeobi, MO Ozoje, OA Adebambo, Effects of naked neck and frizzled genes on egg traits, fertility and hatchability. Nig. J. Anim. Prod. 2004; 21: 19-24.

37. Reta MN. Poultry genetic resources in the countries of Eastern Europe-history and current state. 2006.

38. Sonaiya EB. Rural Poultry in Africa: Proceedings of an International conference on rural poultry production. Thelia House, OAU, Ile-Ife. Akinokun O 1974. The problem of the improvement of poultry production in Nigeria. The Nigerian Agriculture Journal. 1992; 11: 61-71

39. Sonaiya EB. ANRPD progress reports Nov. 1989- June 1995. In: sustainable rural poultry production in Africa. Ed. Proceeding of an international workshop. Addis-Ababa, Ethiopia ANRPD. 2000; 134-143.

40. Sonaiya EB, RDS. Branckaert, EF Gueye, Research and development options for family poultry. First INFPD/FAO Electronic Conference on Family. 1999.

41. Tadelle DT. Production of local chickens under village management system. Tropical Animal Health and Production. 2003; 34: 405-416.

42. Uza D.V, Olurunju S.A.S and Orkpeh J.M.T (2001). An assessment of the disease and production status of indigenous poultry in Benue and Nasarawa states of Nigeria. In: strategies for poverty Alleviation: Animal production option.

Other Articles

Article Image 1

Effect of spirulina level on post-weaning growth of guinea pig Cavia porcellus in western Cameroon

For post-weaning growth performance evaluation in Guinea pig (Cavia porcellus), an 8-week trial was conducted in West Cameroon. 59 weaned animals (3 weeks of age) from a breeding trial were used. After identification and weighing, animals were submitted on the same treatment as their mothers. Each animal receives daily between 8 and 9 am, an experimental food corresponding to its group. Animals of TS0 group received Trypsacum laxum and the concentrate with 0% spirulina, while others received in their diets 2% (TS2), 4% (TS4) and 6% (TS6) spirulina. Food refusal was collected and weighed before the new distribution, for feed intake determination. During the growth period, T. laxum, concentrate and nutrients (Dry Matter (DM), Organic Matter (OM), Crude fiber (CF) and Crude Protein (CP)) intake was significantly affected by treatments. Highest animal average weight (407.0g) was obtained with treatment TS2 and the lowest (396.64g) with control (TS0). The same tendency was observed with total (TWG) and daily weight gain (DWG). Thus, the highest TWG and DWG (222.06 g and 6.34 g / day) were obtained in TS2 treatments while the lowest (194.82 g and 5.57 g / day) was obtained with TS0. At 8 weeks regardless of the birth type, highest average weight, total and daily weight gain was obtained with treatment TS6. At the same period for the same parameters, no significant difference was observed between treatments TS0, TS2 and TS4. Based on the result, food intake as animal body weight can be improved by 2% of spirulina in the diet but at 6%, growth performance can be improved mostly for the twin’s births

Généviève NGUEDIA1 , Emile MIÉGOUÉ1*, Fernand TENDONKENG1 , Camara SAWA2 , Henry FEULEFACK DEFANG3 , Josué FOSSI1 , Mouchili MAMA1 , Dayan Agwah EBILE1 , Yannick FONGANGet Etienne TEDONKENG PAMO1


Article Image 1

Urgent Call for Action: Avoiding Spread of MosquitoBorne Diseases as a Major Public Health Problem

Mosquitoes are the most important vectors of pathogenic organisms. Diseases like malaria, dengue fever, yellow fever, zika and West Nile encephalitis have emerged or re-emerged in several countries of the world during the past decades [1-4].

These diseases have been ranked by World Health Organization (WHO) as the most important tropical diseases in the worldbecause each year, insects and other vectors transmit infectious pathogens to more than one billion people, causing more than 700,000 deaths worldwide [5]. The impact of these diseases on human and animal is enormous. They affect productivity and cause a vicious spiral of poverty and disability and in another hand affect food production and contribute to economic lost in different ways [6]. The distribution and seasonality of many of these diseases may be influenced by climate change. Mosquitoes are sensitive to temperature, humidity, rainfall patterns, for example when the temperature increaseswould tend to accelerate mosquito life cycles and would also decrease the incubation period of the parasite or virus. The weather patterns and other aspects of climate change can to contribute that the mosquito’s diseases will be increase [7]. These observed climatic changes have led to further water storage with accompanying poor water protection and scanty community participation creating more breeding sites for mosquitos like Aedesaegypti principal responsible of arbovirus transmission like dengue, zika, chikungunya and others [8]. For malaria vectors the rainfall patterns bring several temporal natural breeding sites and contribute to malaria transmission4 .Impacts on health would entail the emergence of a disease in new areas as well as the extension of the transmission season in areas where it is present [4,9], besides willbe to changes the geographical range of these vector/borne diseases for example the chikungunya outbreaks in Europe [10].

Maria del Carmen Marquetti Fernández1* and Andrés Bisset Marquetti2


Article Image 1

A Review on Bacterial and Fungal Diseases in Dogs

The objective of this article was to briefly review about the most common bacterial and fungal infections in pet animals especially dogs by describing information about the causative agent, clinical signs and symptoms, route of transmission and diagnosis of the infection. In last years, the pet population has increased and the interest in having pets where are became sharing in our daily life in many purposes such as protection, entertainment, hunting and helping their owner, etc... . Thus, the increase of the knowledge and awareness of dog owners regarding these diseases enable them to significantly reduce the occurrence of these infections. Bacterial infections such as Pasteurella, Salmonella, Brucella, Yersinia enterocolitica, Leptospira, Campylobacter, Bordetella bronchiseptica, and Coxiella burnetii, and fungal infections including Aspergillosis, Candidiasis and Dermatophytosis are the most common bacterial and fungal infections affecting dogs

Mohammad Elshahat Abd Alfatah*


Article Image 1

Study of Milk Yield and Factors Contributing to the Yield in Jersey and Holstein Breeds of Cattle in Rupandehi District

Survey was conducted in Mainahiya Village Development Committee, HarnaiyaVillage Development Committee, TilottamaMunicipality and Devdaha Municipality of Rupandehi district in the year April 2015 in order to study the milk yield and milk parameters in Jersey and Holstein cattle. Total sampling household were 13 and sampling size was 158. The primary data were collected through structure questionnaire and collected information were tabulated in Microsoft excel and SPSS version 16. Different statistical analyses were performed by SPSS version 16 and Mini Tab. Result showed that average milk yield of Holstein10.504±0.620ltr, fat 3.995±0.308%, protein 3.241±0.087% and SNF 8.830±0.208%. The average milk yield of Jersey 8.594±0.631, fat 4.476±0.314, protein 3.400±0.088 and SNF 9.016±0.212 were found. Milk yield was significantly(p<0.01) higher in Holstein breed than jersey and milk yield was significantly (p<0.01) higher in 4thlactation.Experiment showed the insignificant (p>0.01)negative correlation between milk yield and fat(r=-0.120),milk yield and protein (r=-0.49)and milk yield and SNF (r=-0.53)but significant(p<0.01)and positive correlation between fat and protein(r=0.485),fat and SNF(r=0.501) and protein and SNF(r=0.778).

Nabin Raj Gyawali*


Article Image 1

Emergence of Novel Canine Distemper Virus Strains-A Real Threat to Terrestrial Domestic and Wild Animals

Canine distemper virus (CDV) is one of the most important pathogens of domestic and wild animals and widely distributed virus around the world. It belongs to thegenus Morbillivirus within the Paramyxoviridae family. At least six orders and over 20 families of Mammals are susceptible to this virus. CDV is highly contagious and have high morbidity andmortality in wild and domestic animal populations. Although there is only one serotype of the virus, it has widest host range with a constant threat to the conservation of the multiple endangered species worldwide. The lack of ecoepidemiological information of CDV transmission other than dogs has led to investigate the importance of the infection in a multihost scenario. The ability to jump the species barrier to infect a variety of mammals including primates has made apprehension that it can infect human being in near future. It is the need of the hour to elucidate the transmissionof CDV in different environments, and to have better understanding about the intricate epidemiological dynamics of CDV in multiple hosts. Among the genes of CDV, H gene is preferred for phylogenetic analysis of different genotypes owing it high mutation rate. However, the full genome sequencing would offer better insights about the substitution rates, glycosylations, and homologous recombination points that would explain the pathogenicity, species jump ability and vaccine failure of this virus as well as enable us to explain in detail its evolutionary informations and better understanding about the intricate epidemiological dynamics of CDV in its multiple host infections. This review is aimed to provide an overview about the recent emergence of CDV genotypes in different species of wild animals, pathogenicity and diagnosis so that the disease can be prevented and control in an efficient and effective manner and it impact on the conservation of a galaxy of wild animals and control can be minimized to a great extent.

S.Nandi*, GK. Sharma, Vikas Gupta, Pallavi Deol, Vishal Chander, Ragini Mishra, UK De, and VK Gupta


Article Image 1

Global Scenario of Canine Parvovirus Mutants: Epidemiology, Diagnostics and Immunoprophylactic Agents

Canine parvovirus 2 (CPV-2) is one of the most important enteropathogen of dogs emerged in 1978 and manifested by two forms namely gastroenteritis and myocarditis. It is characterized by depression, loss of appetite, vomiting and leukopenia. CPV-2 is probably evolved from a very closely related virus in cats, feline panleukopenia virus (FPLV) or a closely related carnivore parvovirus. It caused high morbidity of 100% and low mortality of 10% in adult dogs and 91% in pups. Over the years a number of variants namely CPV-2a, CPV-2b, CPV-2c, New CPV-2a, New CPV-2b and Asp300 (2a/2b) have been reported from different countries in the world with varying degree of pathogenic potential. Although CPV-2 differ from FPV by 6 amino acids in the VP2 protein, subsequent variants differ from CPV-2 only in one or two places. Further, CPV-2 affects only dogs, new variants expanded their host range to cat as well. There are a number of different serological and molecular tests (PCR, nested PCR, SYBR Green based real time PCR, Taqman based real time PCR, Minor grove binding assay based PCR) available for prompt, specific and accurate diagnosis of the disease. Some molecular tests not only detect the CPV-2 but also identify the variant of CPV-2 involved in disease outbreak. Further, both live attenuated and inactivated vaccines are available to control the disease in animals. Besides, new generation vaccines namely recombinant vaccine, peptide vaccine and DNA vaccine have been developed for control of the disease in canines effectively and efficiently. However, new generation vaccines have not been issued license to be used in the field condition. Again, the presence of maternal antibodies often interferes with the active immunization with live attenuated vaccine and there always exists a window of susceptibility in spite of following proper immunization regimen. Lastly, judicious use of the vaccines in pet dogs, stray dogs and wild canids keeping in mind the new variants of the CPV-2 along with the proper sanitation and disinfection practices must be implemented for the successful control the disease.

S.Nandi, GK Sharma, Vikas Gupta, Pallavi Deol, Vishal Chander, UK De* and VK Gupta


Article Image 1

Omega-3 Fatty Acid Enrichment Capacity in Egg Yolks from Laying Hens Fed either Corn Germ Oil or Corn Germ Meal

Enrichment of omega-3 polyunsaturated fatty acids in egg yolk via diets alternationhas been considered worldwide. The concentrations of alpha-linolenic (ALA), eicosapentaenoic (EPA), and docosahexaenoic acids (DHA) in the yolk can reachup to 250 mg/50 g whole egg. Corn germ meal (CGM), a rich source of ALA, iswidely used for omega-3 enrichment; however, the impact of dietary corn germ source: corn germ oil (CGO) and CGM on fatty acid transfer to egg yolk in laying hens is still a little known. Therefore, this study was aimed to evaluate the transfer of ALA, EPA, and DHA into egg yolk from extracted corn germ oil or corn germ meal. A total of 132 Hy-Line W-36 laying hens (from 25 to 33 wks. old) were randomly housed with 3 birds/cage (4 replicates/treatment) for each of the 11 treatment groups. Diets were isocaloric and consisted of a control diet, 5 corn germ oil diets (0.5, 1.0, 2.0, 3.0, or 5.0% corn germ oil), and 5 corn germ meal diets (calculated corn germ oil concentration from corn germ meal 0.5, 1.0, 2.0, 3.0, 5.0%). Increasing dietary concentrations of corn germ oil and corngerm meal resulted in increased ALA, EPA, and DHA concentration in egg yolk, total fatty acid deposition from corn germ oil was 2 times greater than that of corn germ meal when fed at the same dietary inclusions (P < 0.01) but EPA and DHA concentrationsin egg yolk were not different due to oil or meal source (P = 0.22); however, increasing dietary inclusion rates of corn germ oil from either source increased yolk EPA and DHA (P < 0.01).Hens fed either corn germ oil or corngerm meal resulted in reduction of BW as dietary concentrations increased (P = 0.02). Feed efficiency increased as corn germ oil increased in concentration, while feeding corn germ meal decreased feed efficiency (P = 0.01). Analysis of the nitrogen corrected apparent metabolizable energy (AMEn) of corn germ oil resulted in 7,468 kcal/kg on an as-fed basic. Dietary corn germ oil improved feed efficiency and increased ALA deposition into yolk compared to that of the meal source, demonstrating that corn germ oil to be a viable alternative for ALA egg enrichment.

Nguyen Duy Hoan* and Mai Anh Khoa*


Article Image 1

Enterococcus saccharolyticus Es 3/11 D27 Isolated from Horses and its Postbiotic Activity

The species Enterococcus saccharolyticus is rarely occurred and identified. No information exists about this species strain bacteriocin/bioactive/postbiotic potential which could be utilized e.g. for bacterial prevention/protection. Standard microbiological methods as well as PCR analyses were used to basic characterization the strain 3/11D27. To test bacteriocin/ postbiotic potential, agar spot test was conducted and 158 indicator bacteria (147 Gram-positive and 11 Gram-negative). The strain E. saccharolyticus Es 3/11D27 was isolated from the inner part of the auricle mucosa of clinically healthy mare (Slovak breed Norik from Murá?) using sequence analysis. After sequencing, the strain was involved in GenBank with accession number MN822909. This strain has produced bacteriocin substance with inhibitory potential against Gram-positive and Gram-negative indicator bacteria non- depending on the indicator bacteria species. The inhibitory activity reached 100 up to 800 AU/ml. Es 3/11D27 has been also susceptible to antibiotics tested. It has been hemolysis-, deoxyribonuclease- negative with absence of virulence factors genes. Low-grade biofilm-forming ability using the plate assay was found in Es 3/11D27. It is first time presenting horses-derived species strain E. saccharolyticus with bacteriocin activity. Additional studies will be processed to determine detail characteristic of bacteriocin substance produced by the strain Es 3/11D27 with the aim for its further application potential in horses breeding.

Andrea Lauková1*, Eva Styková2 ,Valentína Focková1 and Marián Maďar2


Article Image 1

Characterization of Qualitative Morphological Traits in Indigenous Goats in Ethiopia Using Multivariate Analysis

Characterization of goat breeds based on morphological trait variations is essential for planning breed improvement programs and conservation strategies. This study aimed to use multiple correspondence analysis to evaluate qualitative morphological traits and identify traits that best describe the morphological structure of Hararghe goats. The results of the study show that there are significant differences in the distribution of some qualitative morphological traits among the three districts (Bedeno, Fedis, and Gorogutu) while others do not show significant differences. The first principal axis explained 15% of the principal inertia, the second principal axis explained 12%, and cumulatively the first two principal axes explained 27% of the principal inertia. The MCA method identified systematic relationships among traits and trait attributes. On the dimensions identified, the sample goat population of Fedis and Gorogutu clustered together with concave head profile, straight horn shape, obliquely upward horn orientation, presence of Toggle, and pigmented Muzzle; while the corresponding values of goats in Bedeno clustered together with the presence of horn, curved and spiral horn shape, backward and lateral horn and ear orientation with slope down from wither, slope up toward rump, and pendulous. These findings provide valuable information for better multivariate characterization and conservation of indigenous goat ecotypes.

Kefelegn Kebede*, Bushra Mohammad, Mengistu Urge and Ashenafi Getachew Megersa


Article Image 1

Case Report: Nutritional Management of Canine Renal Insufficiency Utilizing a Home-Cooked Diet and Supplementation

Renal insufficiency is difficult to diagnose in the early stages due to delayed clinical presentation and significant blood value changes. However, dysfunction in the kidneys can lead to life-threatening changes in physiology. When renal insufficiency is suspected, it is important to utilize nutrition as a mode of intervention. This case report follows a canine patient aging between 13 to 17, reporting clinical changes and blood renal values after administration of an NSAID and possible escalation of renal burden. The case outlines an example of utilizing integrative veterinary medicine practices including a home cooked diet plan with supplementation to address signs of renal insufficiency and gastric ulceration, resulting in complete resolution of clinical signs including symptoms and blood measures.

Debbie Decker¹, Samantha Koziol²*