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Doretto, L.

Publications and source records attributed to Doretto, L..

3 recordsLinked to original sources

TGF-β and BMP subfamily pathways in zebrafish spermatogonial niche: A83-01 and DMH1 inhibitor effects in spermatogonial self-renewal and differentiation

This study unravels the roles of TGF-{beta} (Transforming growth factor-{beta}) superfamily signaling pathway in the zebrafish spermatogonial activity (self-renewal vs. differentiation) by combining ex vivo and specific pathway inhibitors approaches. The TGF-{beta} superfamily signaling pathway is subdivided into TGF-{beta} and Bone morphogenetic proteins (BMP) subfamilies, and is ubiquitous among metazoans, regulating several biological processes, including spermatogenesis. In this study, we evaluated the function of the TGF-{beta} and BMP subfamily pathways in the zebrafish spermatogonial niche using A83-01 and DMH1 inhibitors, respectively. Our results showed that A83-01 potentiated the follicle-stimulating hormone (Fsh) effects on zebrafish spermatogenesis, reducing type A undifferentiated spermatogonia and increasing differentiated spermatogonia (type Adiff and type B spermatogonia) after 7 days of culture. In agreement with histomorphometrical data, the mRNA levels of dazl (marker of spermatogonial differentiation) and pro-differentiation growth factors, such as igf3 and insl3, were significantly augmented following A83-01. For the BMP signaling pathway, exposure to DMH1 inhibitor showed opposite effects as compared to TGF-{beta} superfamily signaling pathway inhibitor. Histomorphometrical analysis demonstrated an accumulation of type A undifferentiated spermatogonia, while the frequency of differentiated spermatogonia was significantly reduced following co-treatment of DMH1 with Fsh after 7 days of culture. To support this data, expression analysis revealed that BMP signaling pathway inhibitor also decreased the testicular mRNA levels of dazl, igf3 and insl3 when compared to control incubation (Fsh). In conclusion, our study demonstrated that TGF-{beta} and BMP subfamily pathways exert a role in zebrafish spermatogonial niche with antagonistic functions for the spermatogonia fate. The TGF-{beta} subfamily pathway is involved with spermatogonial self-renewal and inhibition of differentiation, whereas the BMP subfamily pathway promotes spermatogonial differentiation. These findings are not only relevant to understanding stem cell biology, but may also be useful in several in vitro assays, promoting control of self-renewal and differentiation by potentially directing these processes.

cell biology↗

Thyroid hormones deficiency impairs male germ cell development: a cross talk between hypothalamic-pituitary-thyroid, and - gonadal axes in zebrafish

In vertebrates, thyroid hormones, including thyroxine (T4) and triiodothyronine (T3), are critical players in controlling different physiological processes such as development, growth, metabolism among others. There is evidence in mammals that thyroid hormones are also an important component of the hormonal system that controls reproduction, although studies in fish remain poorly investigated. Here we tested this hypothesis by investigating the effects of methimazole-induced hypothyroidism on the testicular function in adult D. rerio. Treatment of fish with methimazole, in vivo, significantly affected the progression of zebrafish spermatogenesis by inducing the accumulation of pre-meiotic cells, delaying cell differentiation and meiosis, as well as reducing the number of spermatozoa. The observed impairment of spermatogenesis by methimazole was correlated with significant changes in transcript levels for several genes involved in the control of reproduction. Using an in vitro approach, we also demonstrated that in addition to affecting the components of the brain-pituitary-peripheral axis, T3 also exerts direct action at the level of the testis. These results support the hypothesis that thyroid hormones are an essential component of multifactorial control of reproduction and testicular function in zebrafish and possibly other vertebrates.

cell biology↗

Gdnf, a germ cell-derived factor, regulates zebrafish germ cell stemness through the creation of new spermatogonial niches (germ and Sertoli cells) and inhibition of spermatogonial differentiation in an autocrine and paracrine manners

Glial cell line-derived neurotrophic factor (GDNF) and its receptor (GDNF Family Receptor 1 - GFR1) are well known to mediate spermatogonial stem cell (SSC) proliferation and survival in the mammalian testes. In nonmammalian species, Gdnf and Gfr1 orthologs have been found but their functions remain poorly investigated in the testis. Considering this background, this study aimed to understand the roles of Gdnf-Gfr1 signaling pathway in the zebrafish testis by combining in vivo, in silico and ex vivo approaches. Our analysis showed that zebrafish exhibited two paralogs of Gndf (gdnfa and gdnfb) and its receptor, Gfr1 (gfr1a and gfr1b), in agreement with the teleost-specific third round (3R) of whole genome duplication. Expression analysis further revealed that gdnfa and gfr1a were the most expressed copies in the zebrafish adult testes. Subsequently, we demonstrated that gdnfa is expressed in the germ cells, while Gfr1a was detected in early spermatogonia (mainly in types Aund and Adiff) and Sertoli cells. Functional ex vivo analysis showed that Gdnf promoted the creation of new available niches by stimulating proliferation of both type Aund spermatogonia and their surrounding Sertoli cells, but without changing pou5f3 mRNA levels. Strikingly, Gdnf also inhibited late spermatogonial differentiation as shown by the decrease of type B spermatogonia and down-regulation of dazl in the co-treatment with Fsh. Altogether, our data revealed for the first time that a germ cell-derived factor is associated with maintaining germ cell stemness through the creation of new available niches, supporting development of differentiating spermatogonial cysts and inhibiting late spermatogonial differentiation in autocrine and paracrine manners.

cell biology↗