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Published on: February 5, 2015
The Reproductive Toxicity of Monosodium Glutamate by Damaging GnRH Neurons Cannot Be Relieved Spontaneously Over Time
Cheng-Xiang Wang1, Yue Zhang1, Qing-Feng Li2
1Department of Reproductive Medicine, Binzhou Medical University Hospital, Binzhou, Shandong, People's Republic of China.
Objective:
The present study aims to evaluate the effect of monosodium glutamate on testicular spermatogenesis in mice from the perspective of the hypothalamic-pituitary-testicular axis and whether this destructive effect is alleviated with time.
Methods:
Neonatal mice were randomly divided into a monosodium glutamate (MSG) group and a control group, just below the interscapular region after birth with 10 µL MSG to deliver 4 mg/g (body mass), or with equivalent volumes of 0.9% saline. Samples which involved blood, brains and testicles of mice were collected and measured at puberty at 60 days and adulthood at 90 days.
Results:
The results show that the fluorescence intensity of GnRH nerve fibers, the levels of follicle-stimulating hormone (FSH), luteinizing hormone (LH), and testosterone (T) hormones in the reproductive system, the number of spermatocytes and spermatozoa in testicular sections, the body length, body weight, testicular weight, and testicular index in the 60-day-old mice in monosodium glutamate group (MSG60 group) and the MSG90 group were lower than those in the 60-day-old mice in normal control group (NC60 group) (p < 0.05), but the number of apoptotic cells in the testicular section was higher than in the NC60 group (p < 0.05). When the 90-day-old mice in monosodium glutamate group (MSG90 group) was compared with the MSG60 group, except for body weight and testicular weight increase (p < 0.05), there is no significant difference in the other parameters mentioned above (p > 0.05).
Conclusion:
Monosodium glutamate can cause reproductive toxicity to male mice by damaging GnRH neurons, and this reproductive toxicity cannot be relieved spontaneously over time. These findings are supported by observed histological changes.
Insights
Monosodium glutamate (MSG) exposure in neonatal mice damages reproductive health by affecting the hypothalamic-pituitary-testicular axis. This damage to GnRH neurons causes lasting reproductive toxicity, with no spontaneous recovery observed over time.
Area of Science:
- Reproductive Toxicology
- Neuroendocrinology
- Developmental Biology
Background:
- Monosodium glutamate (MSG) is a common food additive.
- Potential adverse effects of MSG on reproductive health require investigation.
- The hypothalamic-pituitary-testicular (HPT) axis is crucial for male reproductive function.
Purpose of the Study:
- To evaluate the impact of neonatal MSG exposure on testicular spermatogenesis in mice.
- To assess the role of the HPT axis in MSG-induced reproductive toxicity.
- To determine if MSG's detrimental effects on male reproduction are reversible over time.
Main Methods:
- Neonatal mice were exposed to MSG or saline (control).
- Reproductive parameters, hormone levels (GnRH, FSH, LH, testosterone), and testicular histology were assessed at 60 and 90 days.
- Apoptotic cell counts in testicular sections were quantified.
Main Results:
- MSG-exposed mice showed reduced GnRH nerve fiber intensity, lower FSH, LH, and testosterone levels compared to controls.
- Spermatogenesis was impaired in MSG-exposed mice, with fewer spermatocytes and spermatozoa.
- Increased apoptosis was observed in the testes of MSG-exposed mice.
- The observed reproductive deficits in MSG-exposed mice did not improve by adulthood (90 days).
Conclusions:
- Neonatal MSG exposure induces reproductive toxicity in male mice by damaging GnRH neurons.
- MSG negatively impacts the HPT axis, leading to impaired spermatogenesis and hormonal imbalances.
- The reproductive toxicity caused by MSG is persistent and does not resolve spontaneously with age.
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