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SM Journal of Environmental Toxicology

Reproductive System Abnormalities Accompanied By Environmental Factors Alterations in Rat Model

Abstract Citation INTRODUCTION TEMPERATURE HOUSING ENVIRONMENTAL ENRICHMENT POLLUTION FREE AND PEACEFUL LOCATION HANDLING STRESS LIGHT CONCLUSION Author contributions Availability of data and materials REFERENCES
Details

Received: 04-Mar-2024

Accepted: 19-Mar-2024

Published: 30-Mar-2024

Muhammad Aslam¹* and Mubashir Abbas²

¹Laboratory of Neurosciences, Graduate School of Health Sciences, KOC University, Istanbul, Turkey
²FQDMF College of medicine, Lyceum Northwestern University, Dagupan city, Pangasinan, Philippines

Corresponding Author:

Muhammad Aslam, Laboratory of Neurosciences, Graduate School of Health Sciences, KOC University, Istanbul, Turkey

Keywords

Rats; Biological research; Environmental conditions; Stress; Handling

Abstract

Rat is one of the most commonly used model animals for biological research. The organs and systems of human being are somewhat similar to that of rat in structure as well as functions, making it a valuable choice for research experimentation in biological sciences. A number of studies have been conducted to evaluate the potential risks and toxicity of different elements on the physiology and histology of rats. There is need to address certain environmental factors affecting rats condition during experimentation. Reproduction along with its pathologies is under investigation on larger scale throughout the world, being central for the existence of a species. These studies focus on the major factors that influence reproductive function. Review of literature clearly indicated the unwanted consequences of over nutrition, malnutrition, high or low temperature, non-enriched housing, improper handling, intense or poor light exposure and environmental pollution on histology and hormonal profile of reproductive system of rats.

Citation

Aslam M, Abbas M.(2024) Reproductive System Abnormalities Accompanied By Environmental Factors Alterations in Rat Model. SM J Environ Toxicol 7: 4.

INTRODUCTION

Human beings are always fighting with a number of environmental factors to maintain steady state health condition failure to adopt environmental insults, cause abnormalities and disease. For treat a certain disease, we must have the basic knowledge about its cause, mode of action, sign and symptoms, risk factors etc. To get the relevant information we used different animals making feasible to carry out experiments on human itself due to a variety of concerns. These model animals share great structural and functional resemblance with human beings. Moreover, they behave much similar to humans in various pathological conditions also and about 90% of veterinary medicines are either identical or similar with medicine used to treat humans. A number of vaccines have been developed using animal models [1].

Wistar laboratory rats (Rattus norvegicus) are one of the experimental models being extensively used in scientific research across the globe owing to multiple similarities with most of the human physiological phenomena. The practice goes centuries back to the ancient times of Greeks [2]. They also respond much likely in most of the complications along with retaining the ability to modify them in response to environmental factors. Their genome has been sequenced presented 90% homology with human [3]. Additionally, they are less expensive with shorter life span and high reproduction rate. Their handling and feeding is relatively easier. They have the ability to learn a wider variety of tasks. Dissection is comparatively easier. But, they require carefully monitored living conditions to survive; e.g. proper diet, optimum ambient temperature, peaceful environment, standard housing facilities,careful handling and appropriate exposure to light. Therefore, vigilant consideration is required during experimentation on these animals to avoid any possible alterations in the biological systems. Environmental fluctuations, even minor in nature may lead to ambiguous outcomes. The core objective of this review is to comprehensively discuss factors that may influence the results and data interpretation during reproductive physiology studies of rats.

DIET

It is generally accepted that a balanced diet with appropriate concentration of all essential ingredients is necessary for proper growth and maintenance of an organism. Any modification in feed constituents even at minute quantities that may administer for prolonged time period may lead to abnormal physiological functioning of particular organism. Commercially available Rodent pellets usually contain about 55% carbohydrates, 20% proteins, 8% fats and 17% others in their routine diet. It has been indicated that high carbohydrate diet (91%) or high protein diet (75%) result in prolongation and even cessation of estrous cycle. High protein and low carbohydrate diet also caused reduction in weight gain [4]. Diet containing high lactose content was proved to retard growth and lower serum progesterone, a key hormone of pregnancy [5]. A study of combined high sugar and high fat diet resulted irregularities in reproductive cycle, disruption in the levels of estradiol, progesterone (P), testosterone (T) and luteinizing hormone. Any imbalance in the P/T ratio is associated with the development of ovarian cyst [6].

High fat diet is major cause of obesity that may elevate apoptosis of luteal cells [7], infertility and various other endocrine and metabolic problems like low metabolic rate, hyperinsulinemia, and overproduction of progesterone [8]. Further studies support the claim that high fat diet causes reduction in estradiol and LH surge and elevation in leptin level [9]. Moreover, number of pregnancies declines and pup’s mortality rate went up [10]. Females suffer with an-ovulatory ovaries and exhibit either delayed breeding or no breeding at all, accompanied by higher serum Insulin and lower adiponectin levels [11]. Likewise, either a general reduction in feed intake or decrease in percentage of any constituent results lower body weight along with reduction in weight of important reproductive endocrine glands and organs (pituitary, ovaries, and uterus). In chronic situations, it affects ovulation rate, cyclic behavior and reproductive receptivity. In addition, serum levels of reproductive hormones like Testosterone and Luteinizing Hormone were lower with a larger corpus luteum containing fibrous tissue in center [12]. Effecting directly, reproduction capabilities are diminished linearly with increasing restrictions [13]. Interestingly, these abnormalities get vanished after switching back to balanced diet to the affected animals. These studies clearly indicated the importance of properly maintained diet for normal reproductive physiology of rats.

TEMPERATURE

Optimum temperature is mandatory for maintaining normal reproductive functions in rats as they are very sensitive to temperature variations. Standard room temperature for rats is 65-75℉ with 40-60% humidity. Raised ambient temperature possesses harmful effects like increased gestational period, number of neonatal deaths, decreased litter size, disturbed implantation with less number of implantation sites and unusual delay in parturition [14]. High temperature affects a number of reproductive abilities as oocyte maturation, early embryonic development, fetal growth and lactation. It also induces oxidative stress by producing reactive oxygen species [15].

High temperature causes production of heat shock proteins in the body to compensate the change however chronic exposure to high temperature leads to abnormalities in reproduction functions [16]. Elevation is not merely harmful, lower temperature also has noxious effects. Although animals strive to normalize the fluctuations gradually but still they suffer by the alterations like decrease in weight and production of Reactive Oxygen Species [17]. These studies clearly specify the importance of proper temperature maintenance during the experimentation especially in hot and dry season.

HOUSING

Every living organism in the world has its own territory and way of living, forcing animals to habitat incompatible condition lead to negative physiological and behavioral responses. This negativity could result poor enrichment, social isolation, grid flooring and absence of proper bedding material [18]. They should be placed in an environment allowing them to perform their natural behaviors like hiding, climbing and standing upright resembled their wild habitat. Devoid of natural mimicking habitat compromised their welfare [19].

ENVIRONMENTAL ENRICHMENT

Rats residing in an open place with an opportunity for a number of social activities are usually confined in small, barren cages placed in a windowless room except some research laboratories. Various studies revealed that enriched environment (environment with improved living conditions) significantly impacts on reproductive performance, weight gain and better survival proportion [20]. It brings positive change on the quality of oocytes as well as reduces the chances of cannibalism [21]. Enriched environment provides improvement in reproductive performance, boost up immunity, reduce behavioral abnormalities and stress [21,22]. Moreover, linked with suppressed release of stress hormone corticosterone and aging neurotransmitters (Acetylcholine and Dopamine) from prefrontal cortex region of brain [23].

It’s believed that rats experience stress and cardiopathies when they are kept individually lacking enriched environment [24]. Additionally, it can illicit feeding, behavior changes, neuronal changes and poor functioning of hypothalamic-pituitary-adrenocortical axis [25]. Enrichment is supposed to be an alternative neuro-rehabilitation approach for traumatic brain injury [26]. It can also restore neurogenesis in aged rats refreshing their cognitive abilities [27]. Generally, laboratory rats are kept in cages during research experimentation, maximum efforts should be made to ensure the provision of enriched environment.

POLLUTION FREE AND PEACEFUL LOCATION

Every living being is constantly under the direct influence of environment. Any disturbance or discomfort in the environment affects organism’s biological systems. Air pollution (mainly Carbon Monoxide) is involved in the disruption of neural development [28]. About 4000 dangerous chemicals have been identified in cigarette smoke. In males they alter semen quality, plasma level of reproductive hormones, spermatogenesis and morphology of spermatozoa. Moreover, associated with generation of ROS leading to DNA fragmentation [29], and death of germ cell diminishing male fertility [30,31]. Airborne particulate matter (includes dust, dirt, soot, smoke, and liquid droplets) is genotoxic to male germ cells [32], while in females it leads to declined fetal weight, dysfunctioning of placenta [33], oxidative stress, deprived oocyte morphology [34], unprompted abortion and significant reduction in placental vascularization [35]. Environmental pollution by pesticides has proven hazardous for living beings as it minimizes life span by damaging vital body organs by generation of potential oxidative stress [36].

A decline in fetal growth and rise in weight gain after birth has been noted following neonatal exposure to high traffic pollution [37]. Long term exposure to noise (mainly of traffic) is observed to be related with cardiovascular abnormalities [38], such as heart failure, BP problems, ischemic stroke and myocardial infarction [39]. Noise can reduce sleep duration and quantity, increases food intake and weight gain [40]. Animals can even suffer from vestibular system damage, balance problems and consequently hearing loss [41]. It is evident from the mentioned facts, requirement of a clean, fresh and disturbance free environment for experimental rats.

HANDLING

Like all others, rats are sensitive animals, require proper and delicate handling and standard laboratory procedures. Improper and careless handling causes long lasting changes in behavior and hormonal profile like estradiol, progesterone, luteinizing hormone, follicle-stimulating hormone and gonadotropin releasing hormone progressing towards an-ovulation. Handling of neonates has much deeper impacts on their reproductive performance even progress to the cessation of estrous cycle [42]. It has been found that improper handling of neonates induces long lasting behavioral and hormonal irregularities [41], underscoring the importance of proper handing during experimental work.

STRESS

Stress is a major factor affects brain activity and alters all physiological and behavioral functions. Stress may provoke due to a variety of physical, psychological and environmental factors. Rats are very susceptible to their surroundings and strongly react no noise as someone enters into room, pick them up or replace their cage. Different animals of the same species even respond differently towards different stimuli, hence stress is the prominent example in animal handling [43]. Scientific studies reported that stress causes weight loss, increased adrenal gland weight [44], and elevated levels of stress hormones like corticosterone [45]. Stress during the gestational age deregulates the production of progesterone hormone; the central regulator of pregnancy along with the disturbance in central nervous system activities [46].

Gonadal hormones enhance the production of stress causing factors especially in females as they are more prone due to high levels of circulating estradiol [47,48]. Maternal stress is then responsible for underdevelopment of reproductive axis of males prenatally [49]. If they face stress in pregnancy their pups show depressed behavior and increased amounts of lymphocytes and interleukin 1β. But with enriched housing most of the immunological alterations were reverted [22]. Neonatal handling can cause long lasting hormonal and behavioral changes [41]. Repeated stress can lower appetite and trigger anxiety, anhedonia and ultimately depression [50].

LIGHT

Light is an essential part of life for all organisms, so increased or decreased light intensity and duration of exposure exert a profound effect on various physiological and behavioral functions. Generally, a 12 hour light/ dark period is preferred. Studies have shown that the female rats kept under bright light for a period of 14 hours for only one cycle either failed to ovulate or showed abnormalities in hormonal profile and behavior [51].

Aother study reported that continuous exposure to bright light (at least 2 months) induced polycystic ovarian syndrome in rats; an endocrine and metabolic disorder of female reproductive system [52]. On the other hand, exposure for less than 10 hours resulted in diminished growth, food intake and reproduction, while exposure for more than 14 hours stimulated these events [53]. Further decline in photoperiod (6 hours) resulted irregularity in estrous cycle [54]. Prolonged exposure to dim light during night resulted reduced diurnal rhythms and food intake along with induction of obesity and diabetes [55-58]. These studies indicated that light dark cycle of 1:1 should be maintained during experimental period.

CONCLUSION

Conclusively present review described concisely the potential factor that could influence reproductive physiology and experimental outcomes. It is evident from a number of researches that (1) under- or over- nutrition of any dietary constituent, (2) temperature above or below from tolerable range, (3) poor housing facilities, (4) lack of proper environmental enrichment, (5) improper or careless handling and (6) prolonged exposure to light / dark cycle, impart profound effects on reproductive performance of normal and healthy rats. So considering all the relevant outcomes, the present review emphasizes on the provision of balanced diet, average temperature, enriched and peaceful housing, stress free handling, needful exposure to light and the use of most compatible procedures to get maximum accuracy of commonly employed experimental findings. Further studies are required to overcome these effects by optimization of environmental and experimental conditions to get standardize outcomes.

Author contributions

MAB wrote the manuscript, searched the literature and wrote the manuscript, MA reviewed and edited the manuscript. All authors have read and approved the final manuscript.

Availability of data and materials

All data generated or analyzed was obtained from original papers and review articles cited from Google scholar, Science direct and PubMed.

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Amare Gojjam¹*, Yenealem Gemi¹, Tademe Minase¹, Dagnaw Ademe¹ and Birhanu Wolde¹


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Growing of Ipomoea aquatica in Seaweed Supplemented Hydroponic System and Identifying Possible Genera of Microbes in the System

Hydroponic system is method of growing plant in nutrient rich solution. The seaweed biomass that is usually disposed as waste once the carrageenan component is extracted from it can be used as a fertilizer. Since nutrients in hydroponic system provide an ideal environment for microorganisms to grow, water-based microorganisms can be easily introduced into the system. This study compared the growth of water spinach (Ipomoea aquatica) grown in hydroponic system. The effects on the growth of plants in the hydroponic system when seaweed waste is used as the fertilizer were also studied. Furthermore, the possible genera of the microbes present in the water samples obtained from the hydroponic system were identified. The plants were grown in treated hydroponic tank (with seaweed waste fertilizer) and untreated hydroponic tank (without seaweed waste fertilizer). The mean heights of the plants in each condition were obtained and compared. Water samples were collected from the treated and untreated and biochemical tests were also carried out using the water samples collected to identify the possible genera of the microbes present in the hydroponic system. The plants height of treated tank is significantly taller than untreated tank. The microbe present in the treated tank was either Chromobacterium spp./ Vibrio spp./ Plesiomonas spp./ Aeromonas spp., Acinetobacter spp., Bordetella bronchiseptica/ Alcaligenes spp./ Shewanella spp./ Pseudomonas spp.(alkali producers), Kurthia spp. and Cardiobacterium spp., and in the untreated tank were Acinetobacter, Bordetella bronchiseptica / Alcaligenes spp./ Shewanella spp./ Pseudomonas spp. (alkali producers) and Chromobacterium spp./ Vibrio spp./ Plesiomonas spp./ Aeromonas spp. Further research need to be carried out to identify the exact bacterial strain of each microbe. By identifying the microbial population of the hydroponic system, further studies can be carried out to identify the beneficial and harmful bacteria. The harmful bacteria can then be eliminated from the hydroponic system to promote healthy growth of plants through hydroponic cultivation.

Vi Sion Chang and Swee Sen Teo*


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Neurolathyrism - A Case Report and Current Views

Neurolathyrism is caused by excessive consumption of Lathyrus sativus (grass pea) and seen in India and parts of sub-Saharan Africa. The disease manifests as irreversible spastic paraparesis and quadriparesis leading to permanent disability. We report two unique cases of Lathyrism secondary to consumption of Lathyrus sativus and review the literature available. Two brothers from a remote village in India presented with slowly progressive spastic paraparesis of unknown aetiology. On neurological examination, they were found to have motor neuron pattern of weakness. Routine laboratory work-up, CSF studies and imaging of the brain and spine were all found to be unremarkable. Upon further review, it was found that the patients had a prolonged history of consumption of Lathyrus sativus legume. There is no known cure for neurolathyrism. As a result, the legume was banned from staple diet. However, the legume continues to be consumed despite the ban and public education.

Khosa Shaweta¹, Khosa Gurveer S², and Mishra Shri K³


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Biodiversity, Application of Bioenergy for Energy Systems or Materials and Environmental Sustainability: Sustainable Energies Future Perspective through Energy Efficiency Development

The demand for energy continued to outstrip supply and necessitated the development of biomass option. Residues were the most popular forms of renewable energy and currently biofuel production became much promising. Agricultural wastes contained high moisture content and could be decomposed easily by microbes. Agricultural wastes were abundantly available globally and could be converted to energy and useful chemicals by a number of microorganisms. Compost or bio-fertilizers could be produced with the inoculation of appropriated thermophilic microbes which increased the decomposition rate, shortened the maturity period and improved the compost (or bio-fertilizer) quality. The objective of the present research was to promote the biomass technology and involved adaptive research, demonstration and dissemination of results. With a view to fulfill the objective, a massive field survey was conducted to assess the availability of raw materials as well as the present situation of biomass technologies. In the present communication, an attempt had also been made to present an overview of present and future use of biomass as an industrial feedstock for production of fuels, chemicals and other materials. We may conclude from the review paper that biomass technology must be encouraged, promoted, invested, implemented, and demonstrated, not only in urban areas but also in remote rural areas.

Abdeen Mustafa Omer*


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Utilization of two Bacterial Strains (Ochrobactrum Intermedium BC1 and Cupriavidus Taiwanensis LA) to Biodegrade Anthracene, Fluorene, and Naphthalene

Polycyclic aromatic hydrocarbons, known as PAHs, typically persist in the environment, exposing humans to a? considerable health hazard because of the toxins they contain and their capability of triggering cancer. Anthropogenic activities have introduced high levels of PAHs into Arabian Gulf countries’? soil and coastal waters. Numerous studies have indicated that diverse bacterial? strains can successfully break down PAHs. The deduction made is that biodegradation stands as the top choice in terms of? safety, effectiveness, and affordability when it comes to handling PAH-contaminated sites and locations. The efficiency of degrading three PAHs was analyzed in this study with the use? of two novel bacterial strains, considering the optimal temperature and pH requirements. Coastal sediments from the Eastern Province of Saudi Arabia yielded pure cultures of Ochrobactrum intermedium BC1 and Cupriavidus? taiwanensis LA, which were subjected to spiking with 100ppm concentrations each for anthracene, fluorene, and naphthalene. They were then incubated at 25°C in? a shake incubator for 18 days. A solid-phase micro-extraction (SPME) device was used. The extraction of residual PAHs? was the main objective of using the SPME device. Gas Chromatography/Mass Spectrometry (GC-MS) was utilized to quantify and? analyze the residues at predefined time intervals. By the conclusion of the 18-day timeframe, Ochrobactrum intermedium BC1 degraded naphthalene completely. Additionally, anthracene? experienced a reduction of approximately 87%, while fluorene underwent a decrease of about 67. Cupriavidus taiwanensis LA degraded anthracene, fluorene, and? naphthalene by 88%, 53%, and 91% respectively. The degrading efficiency of these novel strains of? bacteria is evidenced by these results. In closing, these strains can be considered potential members of a consortium of microbes? capable of degrading PAHs that can be employed effectively in various cleanup endeavors.

Mordecai J¹, Al-Thukair A²*, Jameel Al-Thagfi³, Basheer Chanbasha³, and Alexis Nzila²