上海交通大学学报(医学版) ›› 2022, Vol. 42 ›› Issue (12): 1772-1779.doi: 10.3969/j.issn.1674-8115.2022.12.017
• 综述 • 上一篇
收稿日期:
2022-02-15
接受日期:
2022-06-18
出版日期:
2022-12-28
发布日期:
2022-12-28
通讯作者:
田英
E-mail:luqi77@sjtu.edu.cn;tianmiejp@sjtu.edu.cn
作者简介:
卢 婍(1995—),女,博士生;电子信箱:luqi77@sjtu.edu.cn。
基金资助:
LU Qi(), ZHANG Shanyu, TIAN Ying()
Received:
2022-02-15
Accepted:
2022-06-18
Online:
2022-12-28
Published:
2022-12-28
Contact:
TIAN Ying
E-mail:luqi77@sjtu.edu.cn;tianmiejp@sjtu.edu.cn
Supported by:
摘要:
农药杀虫剂是农业领域和家庭中使用的主要农药类别之一,包括有机氯类杀虫剂(organo-chlorine pesticide,OCP)、有机磷类杀虫剂(organophosphate pesticide,OP)、氨基甲酸酯类杀虫剂(carbamate pesticides,CM)、拟除虫菊酯类杀虫剂(pyrethroid pesticide,PYR)和新烟碱类杀虫剂(neonicotinoid)等,被广泛应用于农业园林和家庭室内的防虫除虫,在环境中广泛残留,可通过饮用水和食物链等多种暴露途径在人体中富集,从而对健康产生一系列不良影响。近年来,农药杀虫剂对女性生殖健康的潜在危害引起了人们的关注。越来越多的研究表明,农药杀虫剂暴露与女性生殖内分泌异常、月经周期紊乱、生育能力下降、备孕时间延长、自然流产和女性内生殖器官疾病等有关。然而农药杀虫剂影响女性生殖健康的发生机制尚不明确。该文总结了近年来农药杀虫剂暴露与女性生殖健康相关的环境流行病学研究,并从下丘脑-垂体-性腺轴干扰、诱导氧化应激及生殖细胞凋亡等方面,对农药杀虫剂诱导雌性生殖毒性的潜在作用机制进行了探讨。
中图分类号:
卢婍, 张善宇, 田英. 农药杀虫剂对女性生殖健康影响的研究进展[J]. 上海交通大学学报(医学版), 2022, 42(12): 1772-1779.
LU Qi, ZHANG Shanyu, TIAN Ying. Research progress in the effects of insecticides on female reproductive health[J]. Journal of Shanghai Jiao Tong University (Medical Science), 2022, 42(12): 1772-1779.
1 | TOMIZAWA M, CASIDA J E. Neonicotinoid insecticide toxicology: mechanisms of selective action[J]. Annu Rev Pharmacol Toxicol, 2005, 45: 247-268. |
2 | 束放, 熊延坤, 韩梅. 2015年我国农药生产与使用概况[J]. 农药科学与管理, 2016, 37(7): 1-6. |
SU F, XIONG Y K, HAN M. Overview of China's pesticide production and usage in 2015[J]. Pestic Sci Adm, 2016, 37(7): 1-6. | |
3 | BRETVELD R W, THOMAS C M G, SCHEEPERS P T J, et al. Pesticide exposure: the hormonal function of the female reproductive system disrupted? [J]. Reprod Biol Endocrinol, 2006, 4: 30. |
4 | JUREWICZ J, RADWAN P, WIELGOMAS B, et al. Exposure to pyrethroid pesticides and ovarian reserve[J]. Environ Int, 2020, 144: 106028. |
5 | LI C M, CAO M F, MA L J, et al. Pyrethroid pesticide exposure and risk of primary ovarian insufficiency in Chinese women[J]. Environ Sci Technol, 2018, 52(5): 3240-3248. |
6 | WHITWORTH K W, BAIRD D D, STEINER A Z, et al. Anti-Müllerian hormone and lifestyle, reproductive, and environmental factors among women in rural South Africa[J]. Epidemiology, 2015, 26(3): 429-435. |
7 | HARLOW S D, EPHROSS S A. Epidemiology of menstruation and its relevance to women's health[J]. Epidemiol Rev, 1995, 17(2): 265-286. |
8 | 孔文明, 陈金磊, 肖国兵. 长期农药接触对女性生殖系统功能影响的meta分析[J]. 浙江预防医学, 2011, 23(1): 22-24. |
KONG W M, CHEN J L, XIAO G B. Meta-analysis on the influence of long-term exposure to pesticides on female reproductive system[J].Zhejiang Prev Med, 2011, 23(1): 22-24. | |
9 | WINDHAM G, MITCHELL P, PETREAS M, et al. Exposure of DDT and metabolites in relation to menstrual cycle length among Laotian immigrants[C]//Epidemiology. Philadelphia: Lippincott Williams & Wilkins, 2002, 13(4): S198-S198. |
10 | HP C, SE B, NN W, et al. Pesticides and US farm labor families[J]. Rocky Mt Med J, 1973, 70: 27-31. |
11 | FARR S L, COOPER G S, CAI J, et al. Pesticide use and menstrual cycle characteristics among premenopausal women in the Agricultural Health Study[J]. Am J Epidemiol, 2004, 160(12): 1194-1204. |
12 | ZHANG Y, JI L, HU Y, et al. Exposure to organophosphate pesticides and menstrual cycle characteristics in Chinese preconceptional women[J]. Am J Epidemiol, 2020, 189(5): 375-383. |
13 | 张亚, 郭桐君, 蒋丽芳, 等. 河南省备孕妇女妊娠等待时间的影响因素分析[J]. 中国计划生育学杂志, 2021, 29(7): 1331-1334. |
ZHANG Y, GUO T J, JIANG L F, et al. Analysis of the influencing factors on time to pregnancy of women of childbearing age who wanted to pregnancy in Henan province[J]. Chin J Fam Plann, 2021, 29(7): 1331-1334. | |
14 | BRETVELD R, ZIELHUIS G A, ROELEVELD N. Time to pregnancy among female greenhouse workers[J]. Scand J Work Environ Health, 2006, 32(5): 359-367. |
15 | IDROVO A J, SANÌN L H, COLE D, et al. Time to first pregnancy among women working in agricultural production[J]. Int Arch Occup Environ Health, 2005, 78(6): 493-500. |
16 | CHEVRIER C, WAREMBOURG C, GAUDREAU E, et al. Organochlorine pesticides, polychlorinated biphenyls, seafood consumption, and time-to-pregnancy[J]. Epidemiology, 2013, 24(2): 251-260. |
17 | AXMON A, THULSTRUP A M, RIGNELL-HYDBOM A, et al. Time to pregnancy as a function of male and female serum concentrations of 2, 2'4, 4'5, 5'-hexachlorobiphenyl (CB-153) and 1, 1-dichloro-2, 2-bis (p-chlorophenyl)-ethylene (p, p'-DDE)[J]. Hum Reprod, 2006, 21(3): 657-665. |
18 | HU Y, JI L, ZHANG Y, et al. Organophosphate and pyrethroid pesticide exposures measured before conception and associations with time to pregnancy in Chinese couples enrolled in the Shanghai birth cohort[J]. Environ Health Perspect, 2018, 126(7): 077001. |
19 | LAURIA L, SETTIMI L, SPINELLI A, et al. Exposure to pesticides and time to pregnancy among female greenhouse workers[J]. Reprod Toxicol, 2006, 22(3): 425-430. |
20 | 寇彩云. 女性不孕症及其影响因素的流行病学研究分析[J]. 山西职工医学院学报, 2017, 27(1): 50-51. |
KOU C Y. Analysis of epidemiological studies on female infertility and the factors[J]. Shanxi Zhigong Yixueyuan Xuebao, 2017, 27(1): 50-51. | |
21 | WEISS J M, BAUER O, BLÜTHGEN A, et al. Distribution of persistent organochlorine contaminants in infertile patients from Tanzania and Germany[J]. J Assist Reprod Genet, 2006, 23(9/10): 393-399. |
22 | FUORTES L, CLARK M K, KIRCHNER H L, et al. Association between female infertility and agricultural work history[J]. Am J Ind Med, 1997, 31(4): 445-451. |
23 | SMITH E M, HAMMONDS-EHLERS M, CLARK M K, et al. Occupational exposures and risk of female infertility[J]. J Occup Environ Med, 1997, 39(2): 138-147. |
24 | BASTOS A M X, SOUZA M D, ALMEIDA FILHO G L, et al. Organochlorine compound levels in fertile and infertile women from Rio de Janeiro, Brazil[J]. Arq Bras Endocrinol Metabol, 2013, 57(5): 346-353. |
25 | CURTIS K M, SAVITZ D A, WEINBERG C R, et al. The effect of pesticide exposure on time to pregnancy[J]. Epidemiology, 1999, 10(2): 112-117. |
26 | 胡培培, 高宇, 赵九如, 等. 上海地区辅助生殖女性孕前有机磷农药暴露对子代出生结局的影响[J]. 同济大学学报(医学版), 2020, 41(5): 567-574. |
HU P P, GAO Y, ZHAO J R, et al. Birth outcomes in pregnant women with assisted reproductive technology exposure to organophosphate pesticides in Shanghai[J]. J Tongji Univ (Med Sci), 2020, 41(5): 567-574. | |
27 | 陈伟萍, 潘海滔, 张涛. 103例自然流产组织的染色体微阵列结果分析[J]. 中国优生与遗传杂志, 2021, 29(3): 392-394. |
CHEN W P, PAN H T, ZHANG T. Chromosomal microarray analysis on 103 cases of spontaneous abortion[J]. Chin J Birth Health & Heredity, 2021, 29(3): 392-394. | |
28 | 徐庆华. 妇女早孕期有机磷农药暴露与胎儿发育的相关性研究[D]. 昆明: 昆明医科大学, 2020. |
XU Q H. The associations between maternal exposure to organophosphate pesticide during early pregnancy and fetal development[D]. Kunming: Kunming Medical University, 2020. | |
29 | KORRICK S A, CHEN C, DAMOKOSH A I, et al. Association of DDT with spontaneous abortion: a case-control study[J]. Ann Epidemiol, 2001, 11(7): 491-496. |
30 | 闰绍妹, 翟庆峰, 邢杰, 等. 农民农药暴露与不良妊娠结局关系的meta分析[J]. 中华劳动卫生职业病杂志, 2012, 30(11): 859-862. |
YAN S M, ZHAI Q F, XIN J, et al. Relationship between pesticide exposure and adverse pregnancy outcomes among famers: a meta-analysis[J]. Chin J Ind Hyg Occup Dis, 2012, 30(11): 859-862. | |
31 | AL-HUSSAINI T K, ABDELALEEM A A, ELNASHAR I, et al. The effect of follicular fluid pesticides and polychlorinated biphenyls concentrations on intracytoplasmic sperm injection (ICSI) embryological and clinical outcome[J]. Eur J Obstet Gynecol Reprod Biol, 2018, 220: 39-43. |
32 | UPSON K, DE ROOS A J, THOMPSON M L, et al. Organochlorine pesticides and risk of endometriosis: findings from a population-based case-control study[J]. Environ Health Perspect, 2013, 121(11/12): 1319-1324. |
33 | PORPORA M G, MEDDA E, ABBALLE A, et al. Endometriosis and organochlorinated environmental pollutants: a case-control study on Italian women of reproductive age[J]. Environ Health Perspect, 2009, 117(7): 1070-1075. |
34 | GUO Z Z, QIU H L, WANG L L, et al. Association of serum organochlorine pesticides concentrations with reproductive hormone levels and polycystic ovary syndrome in a Chinese population[J]. Chemosphere, 2017, 171: 595-600. |
35 | LERRO C C, KOUTROS S, ANDREOTTI G, et al. Organophosphate insecticide use and cancer incidence among spouses of pesticide applicators in the Agricultural Health Study[J]. Occup Environ Med, 2015, 72(10): 736-744. |
36 | 曹素梅, 万雪萍, 严美姣, 等. miRNAs介导下丘脑-垂体-性腺轴调控动物生殖的研究进展[J]. 中国畜牧杂志, 2017, 53(1): 1-6. |
CAO S M, WAN X P, YAN M J, et al. Research progress on miRNAs-mediated HPG axis in regulating animal reproduction[J]. Chin J Anim Sci, 2017, 53(1): 1-6. | |
37 | YE X Q, LIU J. Effects of pyrethroid insecticides on hypothalamic-pituitary-gonadal axis: a reproductive health perspective[J]. Environ Pollut, 2019, 245: 590-599. |
38 | DICKERSON S M, GORE A C. Estrogenic environmental endocrine-disrupting chemical effects on reproductive neuroendocrine function and dysfunction across the life cycle[J]. Rev Endocr Metab Disord, 2007, 8(2): 143-159. |
39 | YE X Q, LI F X, ZHANG J Y, et al. Pyrethroid insecticide cypermethrin accelerates pubertal onset in male mice via disrupting hypothalamic-pituitary-gonadal axis[J]. Environ Sci Technol, 2017, 51(17): 10212-10221. |
40 | PINE M D, HINEY J K, LEE B, et al. The pyrethroid pesticide esfenvalerate suppresses the afternoon rise of luteinizing hormone and delays puberty in female rats[J]. Environ Health Perspect, 2008, 116(9): 1243-1247. |
41 | SOLATI J. Alterations of sexual behavior and plasma concentrations of pituitary/gonadal hormones after early-life exposure of mice to cypermethrin[J]. Neurophysiology, 2012, 44(3): 229-233. |
42 | BLISS S P, NAVRATIL A M, XIE J J, et al. GnRH signaling, the gonadotrope and endocrine control of fertility[J]. Front Neuroendocrinol, 2010, 31(3): 322-340. |
43 | 郝建明, 陈实平, 陈克铨. 垂体促性腺激素细胞[J]. 解剖学报, 1995, 26(3): 332-335. |
HAO J M, CHEN S P, CHEN K Q. Pituitary gonadotropin cells[J]. Acta Anatomica Sinica, 1995, 26(3): 332-335. | |
44 | PASCOTTO V M, GUERRA M T, FRANCI J A, et al. Effects of a mixture of pesticides on the adult female reproductive system of Sprague-Dawley, Wistar, and Lewis rats[J]. J Toxicol Environ Health A, 2015, 78(9): 602-616. |
45 | LI F X, MA H H, LIU J. Pyrethroid insecticide cypermethrin modulates gonadotropin synthesis via calcium homeostasis and ERK1/2 signaling in LβT2 mouse pituitary cells[J]. Toxicol Sci, 2018, 162(1): 43-52. |
46 | 王根林. 下丘脑-垂体-性腺轴在动物生殖中的作用[J]. 畜牧与兽医, 1997, 29(4): 182-184. |
WANG G L. The role of hypothalamic-pituitary-gonadal axis in animal reproduction[J]. Anim Husb Vet Med, 1997, 29(4): 182-184. | |
47 | KOTIL T, YÖN N D. The effects of permethrin on rat ovarian tissue morphology[J]. Exp Toxicol Pathol, 2015, 67(3): 279-285. |
48 | GREWAL K K, SANDHU G S, KAUR R, et al. Toxic impacts of cypermethrin on behavior and histology of certain tissues of albino rats[J]. Toxicol Int, 2010, 17(2): 94-98. |
49 | GUERRA M T, DE TOLEDO F C, KEMPINAS W D. In utero and lactational exposure to fenvalerate disrupts reproductive function in female rats[J]. Reprod Toxicol, 2011, 32(3): 298-303. |
50 | SANGHA G K, KAUR K, KHERA K S. Cypermethrin induced pathological and biochemical changes in reproductive organs of female rats[J]. J Environ Biol, 2013, 34(1): 99-105. |
51 | PETR J, CHMELÍKOVÁ E, ZALMANOVÁ T, et al. Pyrethroids cypermethrin, deltamethrin and fenvalerate have different effects on in vitro maturation of pig oocytes at different stages of growth[J]. Animal, 2013, 7(1): 134-142. |
52 | VAN WOUDENBERG A B, GRÖLLERS-MULDERIJ M, SNEL C, et al. The bovine oocyte in vitro maturation model: a potential tool for reproductive toxicology screening[J]. Reprod Toxicol, 2012, 34(2): 251-260. |
53 | LIU Y, HE Q K, XU Z R, et al. Thiamethoxam exposure induces endoplasmic reticulum stress and affects ovarian function and oocyte development in mice[J]. J Agric Food Chem, 2021, 69(6): 1942-1952. |
54 | BHARDWAJ J K, SARAF P. Malathion-induced granulosa cell apoptosis in caprine antral follicles: an ultrastructural and flow cytometric analysis[J]. Microsc Microanal, 2014, 20(6): 1861-1868. |
55 | OLIVEIRA M, MARIA V L, AHMAD I, et al. Contamination assessment of a coastal lagoon (Ria de Aveiro, Portugal) using defence and damage biochemical indicators in gill of Liza aurata-An integrated biomarker approach[J]. Environ Pollut, 2009, 157(3): 959-967. |
56 | NARA B S, DARMADJA D, FIRST N L. Effect of removal of follicles, corpora lutea or ovaries on maintenance of pregnancy in swine[J]. J Anim Sci, 1981, 52(4): 794-801. |
57 | AFZAL GILL S, RIZVI F, ZARGHAM KHAN M, et al. Toxic effects of cypermethrin and methamidophos on bovine corpus luteal cells and progesterone production[J]. Exp Toxicol Pathol, 2011, 63(1/2): 131-135. |
58 | HE J, CHEN J F, LIU R, et al. Fenvalerate-induced alterations in calcium homeostasis in rat ovary[J]. Biomed Environ Sci, 2006, 19(1): 15-20. |
59 | ZHOU Y J, WANG X D, XIAO S, et al. Exposure to beta-cypermethrin impairs the reproductive function of female mice[J]. Regul Toxicol Pharmacol, 2018, 95: 385-394. |
60 | DA SILVA FARIA T, DE BITTENCOURT BRASIL F, SAMPAIO F J B, et al. Effects of maternal undernutrition during lactation on estrogen and androgen receptor expressions in rat ovary at puberty[J]. Nutrition, 2010, 26(10): 993-999. |
61 | KHATAB A E, HASHEM N M, EL-KODARY L M, et al. Evaluation of the effects of cypermethrin on female reproductive function by using rabbit model and of the protective role of Chinese propolis[J]. Biomed Environ Sci, 2016, 29(10): 762-766. |
62 | CHEN J F, CHEN H Y, LIU R, et al. Effects of fenvalerate on steroidogenesis in cultured rat granulosa cells[J]. Biomed Environ Sci, 2005, 18(2): 108-116. |
63 | HE J, CHEN J F, LIU R, et al. Alterations of FSH-stimulated progesterone production and calcium homeostasis in primarily cultured human luteinizing-granulosa cells induced by fenvalerate[J]. Toxicology, 2004, 203(1/2/3): 61-68. |
64 | SHARMA D, SANGHA G K, KHERA K S. Triazophos-induced oxidative stress and histomorphological changes in ovary of female Wistar rats[J]. Pestic Biochem Physiol, 2015, 117: 9-18. |
65 | KAPOOR U, SRIVASTAVA M K, SRIVASTAVA L P. Toxicological impact of technical imidacloprid on ovarian morphology, hormones and antioxidant enzymes in female rats[J]. Food Chem Toxicol, 2011, 49(12): 3086-3089. |
66 | 王大延, 王晶晶, 聂亚光, 等. 有机氯农药硫丹的生殖毒性及其机制研究进展[J]. 生态毒理学报, 2017, 12(4): 34-44. |
WANG D Y, WANG J J, NIE Y G, et al. Reproductive toxicity of organochlorine pesticide endosulfan and its mechanism[J]. Asian J Ecotoxicol, 2017, 12(4): 34-44. | |
67 | FEI J, QU J H, DING X L, et al. Fenvalerate inhibits the growth of primary cultured rat preantral ovarian follicles[J]. Toxicology, 2010, 267(1/2/3): 1-6. |
68 | LIU J, YANG Y, YANG Y, et al. Disrupting effects of bifenthrin on ovulatory gene expression and prostaglandin synthesis in rat ovarian granulosa cells[J]. Toxicology, 2011, 282(1/2): 47-55. |
69 | 曾凡夫, 段燕英. 氨基甲酸酯类农药生殖毒性及其机制研究进展[J]. 卫生研究, 2016, 45(1): 159-162. |
ZENG F F, DUAN Y Y. Progress of research on reproductive toxicity of carbamate pesticides and its mechanism[J]. J Hyg Res, 2016, 45(1): 159-162. | |
70 | SIES H. Oxidative stress: oxidants and antioxidants[J]. Exp Physiol, 1997, 82(2): 291-295. |
71 | ZHOU Y J, HUANG H R, ZHOU J, et al. Beta-cypermethrin exposure affects female reproduction by enhancing oxidative stress in mice uterine tissue[J]. Regul Toxicol Pharmacol, 2018, 98: 284-290. |
72 | SHI L Y, ZHANG J J, LAI Z W, et al. Long-term moderate oxidative stress decreased ovarian reproductive function by reducing follicle quality and progesterone production[J]. PLoS One, 2016, 11(9): e0162194. |
73 | 张春晖, 王晨虹, 钱卫平. 原始卵泡激活的分子机制及临床应用进展[J]. 中国医师杂志, 2021(9): 1281-1285. |
ZHANG C H, WANG C H, QIAN W P. Progress in molecular mechanism and clinical application of primordial follicle activation[J]. J Chin Physician, 2021(9): 1281-1285. | |
74 | JIA Z Z, ZHANG J W, ZHOU D, et al. Deltamethrin exposure induces oxidative stress and affects meiotic maturation in mouse oocyte[J]. Chemosphere, 2019, 223: 704-713. |
75 | ZHAO X M, HAO H S, DU W H, et al. Melatonin inhibits apoptosis and improves the developmental potential of vitrified bovine oocytes[J]. J Pineal Res, 2016, 60(2): 132-141. |
76 | LAN M, ZHANG Y, WAN X, et al. Melatonin ameliorates ochratoxin A-induced oxidative stress and apoptosis in porcine oocytes[J]. Environ Pollut, 2020, 256: 113374. |
77 | YONG W L, JIAO J H, KOU Z Y, et al. Resveratrol ameliorates malathion-induced estrus cycle disorder through attenuating the ovarian tissue oxidative stress, autophagy and apoptosis[J]. Reprod Toxicol, 2021, 104: 8-15. |
[1] | 任云杰 1,施烨闻 2,王广鹤 1. 大气细颗粒物暴露致发育毒性研究进展[J]. 上海交通大学学报(医学版), 2019, 39(5): 550-. |
[2] | 秦凯丽 1*,刘安明 2*,袁崇刚 3,施蓉 1,姚谦 1,蔡辰 4,周义军 1,田英 1, 5,张妍 1,高宇 1. 孕期多种环境污染物暴露现状——基于山东莱州湾出生队列的生物监测数据[J]. 上海交通大学学报(医学版), 2019, 39(4): 421-. |
[3] | 季麟 1,茹鲜古丽·艾姆孜 1, 2,张妍 1,施蓉 1,周义军 1,成晓蒙 3,王雪梅 3,田英 1,高宇 1. 不同对氧磷酶 1 基因型孕妇有机磷农药暴露与氧化应激水平的相关性[J]. 上海交通大学学报(医学版), 2018, 38(2): 174-. |
[4] | 陈迪迪,张 妍,施 蓉,等. 室内杀虫剂暴露与儿童急性白血病发病的关系[J]. 上海交通大学学报(医学版), 2014, 34(2): 201-. |
阅读次数 | ||||||
全文 |
|
|||||
摘要 |
|
|||||