| Literature DB >> 30611299 |
Andrea Di Nisio1, Carlo Foresta2.
Abstract
Over the past two decades, public health has focused on the identification of environmental chemical factors that are able to adversely affect hormonal function, known as endocrine disruptors (EDs). EDs mimic naturally occurring hormones like estrogens and androgens which can in turn interfere with the endocrine system. As a consequence, EDs affect human reproduction as well as post and pre-natal development. In fact, infants can be affected already at prenatal level due to maternal exposure to EDs. In particular, great attention has been given to those chemicals, or their metabolites, that have estrogenic properties or antagonistic effects on the activity of androgen or even inhibiting their production. These compounds have therefore the potential of interfering with important physiological processes, such as masculinization, morphological development of the urogenital system and secondary sexual traits. Animal and in vitro studies have supported the conclusion that endocrine-disrupting chemicals affect the hormone-dependent pathways responsible for male gonadal development, either through direct interaction with hormone receptors or via epigenetic and cell-cycle regulatory modes of action. In human populations, epidemiological studies have reported an overall decline of male fertility and an increased incidence of diseases or congenital malformations of the male reproductive system. The majority of studies point towards an association between exposure to EDs and male and/or female reproductive system disorders, such as infertility, endometriosis, breast cancer, testicular cancer, poor sperm quality and/or function. Despite promising discoveries, a causal relationship between the reproductive disorders and exposure to specific toxicants has yet to be established, due to the complexity of the clinical protocols used, the degree of occupational or environmental exposure, the determination of the variables measured and the sample size of the subjects examined. Despite the lack of consistency in the results of so many studies investigating endocrine-disrupting properties of many different classes of chemicals, the overall conclusion points toward a positive association between exposure to EDs and reproductive system. Future studies should focus on a uniform systems to examine human populations with regard to the exposure to specific EDs and the direct effect on the reproductive system.Entities:
Keywords: Endocrine disruptors; Infertility; Male health; Seminal parameters; Sexual development
Mesh:
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Year: 2019 PMID: 30611299 PMCID: PMC6321708 DOI: 10.1186/s12958-018-0449-4
Source DB: PubMed Journal: Reprod Biol Endocrinol ISSN: 1477-7827 Impact factor: 5.211
Fig. 1Schematic representation of endocrine disruptors’ (EDs) effects on male fertility and the related mechanisms of toxicity. Results from both pre-clinical and clinical studies are summarized for each ED. If proposed effects are common to more EDs, they are reported together within black squares. Black arrows refer to stimulatory pathways. Red arrows with blunt ends represent inhibitory regulation. Hypotalamic-pituitary regulation of testicular function is impaired by most EDs (a). Within the testis, gonadotropins stimulates steroidogenesis in Leydig cells (b) and spermatogenesis in Sertoli cells (c). Overall, EDs disrupt endocrine function by reducing testosterone release or its activity on target tissues. In addition, EDs can reduce semen quality by directly impairing cell structure/viability or indirectly by interfering with hormonal patwhays. GnRH: Gonadotropin-releasing hormone; LH: Lutehinizing Hormone; FSH: Follicle-Stimulating Hormone; T: testosterone; AR: Androgen Receptor; FSHR: FSH Receptor; LHR: LH Receptor; E2: Estradiol; ROS: Reactive Oxygen Species; BTB: Blood-Testis Barrier; BPA: Bisphenol A; Ps: Phtalathes; Cd: Cadmium; Ops: Organophosphate pesticides; PFCs: Perfluoroalkyl Compounds
Summary of epidemiological observational studies on the effects of EDs exposure on semen quality and endocrine function in humans
| EDs | Population | Design | Main Findings | Ref. |
|---|---|---|---|---|
| Ps | 168 men from subfertile couples | CC | Decreased sperm motility and concentration | [ |
| 463 male partners of subfertile couples | C | Decreased sperm concentration and mobility | [ | |
| 150 men | C | Decreased sperm concentration | [ | |
| 379 men from an infertility clinic | CC | Increased DNA damage | [ | |
| 65 asthenospermic, 65 oligoasthenospermic, 50 fertile males | CC | Decreased sperm motility | [ | |
| 425 men from an infertility clinic | P | Decreased testosterone, estradiol,and free androgen index | [ | |
| BPA | 42 occupationally exposed and 42 occupationally nonexposed men | CS | Lower FSH in occupationally exposed men. No differences in LH and fT. | [ |
| 307 men from general population | CS | No associations with E2, SHBG, and fT. Associated with higher T. | [ | |
| 167 men attending a fertility clinic | P | Associated with lower inhibin B and LH and higher FSH. No relationship with T, SHBG, E2, fT, T3, T4, and TSH. | [ | |
| 190 men attending a fertility clinic | CS | Associated with lower sperm concentration, normal morphology and motility. No association with total sperm count. Associated with higher sperm DNA damage. | [ | |
| 315 fertile men from prenatal clinics | CS | Associated with lower FAI and FAI:LH and higher SHBG. No association with semen parameters, FSH, LH, T, inhibin B, and fT. | [ | |
| 218 occupationally exposed and nonexposed men | P | Associated with lower sperm concentration, total count, normal motility and vitality in all men. Associated with lower sperm concentration, normal motility and vitality in occupationally exposed men. Associated with lower sperm concentration in occupationally nonexposed men. No association with ejaculate volume and morphology. | [ | |
| 149 male partners of couples undergoing IVF treatments | P | Associated with lower total sperm count, concentration, and vitality. No association with other semen quality parameters. | [ | |
| 308 young men from general population | CS | Associated with lower progressive motility. No association with other semen quality parameters. Associated with higher T, LH, E2, and fT. No association with FSH, inhibin B, and SHBG. | [ | |
| 418 male partners of couples trying to become pregnant | P | Associated with lower % sperm DNA fragmentation. No association with semen quality parameters | [ | |
| OPs | 94 cases and 95 controls | CC | Decreased sperm concentration and motility | [ |
| 31 sprayers and 80 controls | CC | Pesticide sprayers had significantly reduced seminal volume, percentage of motility, percentage of sperm with normal morphology, serum LH and T levels, increased time of liquefaction, seminal pH, percentage of immature sperm morphology, | [ | |
| 32 cases, 46 internal controls, 22 external controls | CC | Sperm motion parameters; sperm progression and beat cross frequency in the exposure group were decreased significantly compared with the internal and the external control groups. | [ | |
| PFCs | 105 men from general population | R | Association of PFOS and PFOA with abnormal sperm morphology; no association between other PFCs and semen parameters or reproductive hormones | [ |
| 256 non-exposed adult men attending infertility clinic | CS | No association with semen parameters; positive correlation of serum PFOA and PFOS with LH | [ | |
| 604 fertile men from general population | C | No association between PFCs and apoptotic markers or reproductive hormones emerged; slight increase in SHBG and DNA fragmentation with increased PFOA exposure | [ | |
| 588 partners of pregnant women | C | Association between PFOS and abnormal sperm morphology; positive association between PFOA and semen motility | [ | |
| 247 healthy men from general population | CS | PFOS levels were negatively associated with testosterone; negative association between PFHpS and sperm motility; other PFCs were not significantly associated with semen quality or reproductive hormones | [ | |
| 169 men from an exposed pregnancy cohort | R | Association between PFOA and reduced sperm concentration and total sperm count; association between PFOA and increased levels of LH and FSH; no association between PFOS and any of the measured parameters | [ | |
| 501 couples discontinuing contraception | C | Association with abnormal sperm morphology and sperm immaturity for at least 2 PFCs combined | [ | |
| 59 male patients attending the Centre for Couple Sterility | P | Significant increase in alterations of sperm parameters in PFC-positive subjects; disomy and diploidy rates were significantly increased in PFC-positive males; sperm DNA fragmentation index resulted significantly increased in PFC-positive subjects | [ | |
| Cd | 60 Infertile patients and 40 ferile controls | C | Significant negative correlation was observed between serum Cd level and total sperm count, sperm viability, sperm motility and normal sperm morphology. A positive correlation was also observed between seminal plasma Cd and FSH. | [ |
| 140 Infertile patients, 15 Sperm donors and 35 Unselected males | C | The percentage of motile sperm and sperm concentration correlated inversely with seminal plasma cadmium among the infertility patients | [ | |
| 73 infertile patients and 46 fertile controls | CS | A negative association between seminal cadmium concentration and sperm concentration and sperm motility was found | [ | |
| 61 infertile patients | CC | There was a significant positive association between the percentage of immotile sperms and seminal plasma levels of cadmium. | [ | |
| 149 environmentally-exposed males | CS | Significant negative correlation between blood plasma levels of cadmium and normal sperm morphology. No correlation was found between cadmium and other seminal parameters. | [ | |
| 56 environmentally-exposed males | CS | Significant negative correlation between seminal plasma cadmium levels and total sperm count and sperm concentration. No association was found between cadmium and other seminal parameters | [ | |
| 219 infertile patients | CS | No significant association was found between cadmium exposure and seminal parameters | [ | |
| 123 infertile patients | CS | Serum cadmium was significantly associated with a decrease in testis size and an increase in serum estradiol, FSH and testosterone | [ | |
| 27 occupationally-exposed workers and 45 sperm donors | CS | The concentrations of cadmium did not show any correlation with parameters of semen analysis. | [ | |
| 1052 men attending fertility clinics | CS | Urinary levels of cadmium were significantly inversely associated with progressive sperm motility and total motility | [ | |
| 587 men from the general population | CS | Inverse associations between Cd and semen volume, progressive motility and sperm morphology were found across the whole group | [ |
EDs: Endocrine Disruptors; Ps: Phtalathes; BPA: Bisphenol A; Ops: Organophosphate pesticides; PFCs: Perfluoroalkyl Substances; CC: Case-Control study; CS: Cross-Sectional study; C: Cohort study; P: Prospective Study; R: Retrospective study