Literature DB >> 30927418

Formation of organotypic testicular organoids in microwell culture†.

Sadman Sakib1,2, Aya Uchida1, Paula Valenzuela-Leon1, Yang Yu3,4, Hanna Valli-Pulaski5, Kyle Orwig5, Mark Ungrin1,3,4,6, Ina Dobrinski1,2,6.   

Abstract

Three-dimensional (3D) organoids can serve as an in vitro platform to study cell-cell interactions, tissue development, and toxicology. Development of organoids with tissue architecture similar to testis in vivo has remained a challenge. Here, we present a microwell aggregation approach to establish multicellular 3D testicular organoids from pig, mouse, macaque, and human. The organoids consist of germ cells, Sertoli cells, Leydig cells, and peritubular myoid cells forming a distinct seminiferous epithelium and interstitial compartment separated by a basement membrane. Sertoli cells in the organoids express tight junction proteins claudin 11 and occludin. Germ cells in organoids showed an attenuated response to retinoic acid compared to germ cells in 2D culture indicating that the tissue architecture of the organoid modulates response to retinoic acid similar to in vivo. Germ cells maintaining physiological cell-cell interactions in organoids also had lower levels of autophagy indicating lower levels of cellular stress. When organoids were treated with mono(2-ethylhexyl) phthalate (MEHP), levels of germ cell autophagy increased in a dose-dependent manner, indicating the utility of the organoids for toxicity screening. Ablation of primary cilia on testicular somatic cells inhibited the formation of organoids demonstrating an application to screen for factors affecting testicular morphogenesis. Organoids can be generated from cryopreserved testis cells and preserved by vitrification. Taken together, the testicular organoid system recapitulates the 3D organization of the mammalian testis and provides an in vitro platform for studying germ cell function, testicular development, and drug toxicity in a cellular context representative of the testis in vivo.
© The Author(s) 2019. Published by Oxford University Press on behalf of Society for the Study of Reproduction.

Entities:  

Keywords:  organoid; testicular morphogenesis

Mesh:

Substances:

Year:  2019        PMID: 30927418      PMCID: PMC7302515          DOI: 10.1093/biolre/ioz053

Source DB:  PubMed          Journal:  Biol Reprod        ISSN: 0006-3363            Impact factor:   4.285


  74 in total

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2.  Single Lgr5 stem cells build crypt-villus structures in vitro without a mesenchymal niche.

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Journal:  Nature       Date:  2009-03-29       Impact factor: 49.962

3.  Differential expression of c-kit in mouse undifferentiated and differentiating type A spermatogonia.

Authors:  B H Schrans-Stassen; H J van de Kant; D G de Rooij; A M van Pelt
Journal:  Endocrinology       Date:  1999-12       Impact factor: 4.736

4.  Long-term proliferation in culture and germline transmission of mouse male germline stem cells.

Authors:  Mito Kanatsu-Shinohara; Narumi Ogonuki; Kimiko Inoue; Hiromi Miki; Atsuo Ogura; Shinya Toyokuni; Takashi Shinohara
Journal:  Biol Reprod       Date:  2003-04-16       Impact factor: 4.285

Review 5.  Hormonal regulation of cytochrome P450 enzymes, cholesterol side-chain cleavage and 17 alpha-hydroxylase/C17-20 lyase in Leydig cells.

Authors:  A H Payne
Journal:  Biol Reprod       Date:  1990-03       Impact factor: 4.285

Review 6.  Autophagy in the pathogenesis of disease.

Authors:  Beth Levine; Guido Kroemer
Journal:  Cell       Date:  2008-01-11       Impact factor: 41.582

7.  Sertoli cells control peritubular myoid cell fate and support adult Leydig cell development in the prepubertal testis.

Authors:  Diane Rebourcet; Peter J O'Shaughnessy; Jean-Luc Pitetti; Ana Monteiro; Laura O'Hara; Laura Milne; Yi Ting Tsai; Lyndsey Cruickshanks; Dieter Riethmacher; Florian Guillou; Rod T Mitchell; Rob van't Hof; Tom C Freeman; Serge Nef; Lee B Smith
Journal:  Development       Date:  2014-05       Impact factor: 6.868

8.  Loss of Gata4 in Sertoli cells impairs the spermatogonial stem cell niche and causes germ cell exhaustion by attenuating chemokine signaling.

Authors:  Su-Ren Chen; Ji-Xin Tang; Jin-Mei Cheng; Jian Li; Cheng Jin; Xiao-Yu Li; Shou-Long Deng; Yan Zhang; Xiu-Xia Wang; Yi-Xun Liu
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9.  Human testicular organoid system as a novel tool to study Zika virus pathogenesis.

Authors:  Daniel P Strange; Nima Pourhabibi Zarandi; Goral Trivedi; Anthony Atala; Colin E Bishop; Hooman Sadri-Ardekani; Saguna Verma
Journal:  Emerg Microbes Infect       Date:  2018-05-09       Impact factor: 7.163

10.  Production of large numbers of size-controlled tumor spheroids using microwell plates.

Authors:  Golsa Razian; Yang Yu; Mark Ungrin
Journal:  J Vis Exp       Date:  2013-11-18       Impact factor: 1.355

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  23 in total

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Authors:  S Sakib; T Goldsmith; A Voigt; I Dobrinski
Journal:  Andrology       Date:  2019-07-21       Impact factor: 3.842

Review 3.  A brief history of testicular organoids: from theory to the wards.

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4.  Organotypic Rat Testicular Organoids for the Study of Testicular Maturation and Toxicology.

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5.  Adaptation of Human Testicular Niche Cells for Pluripotent Stem Cell and Testis Development Research.

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Review 6.  Engineered Microsystems for Spheroid and Organoid Studies.

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Review 7.  Regulation of Cell Types Within Testicular Organoids.

Authors:  Nathalia de Lima E Martins Lara; Sadman Sakib; Ina Dobrinski
Journal:  Endocrinology       Date:  2021-04-01       Impact factor: 4.736

Review 8.  Strategies for cryopreservation of testicular cells and tissues in cancer and genetic diseases.

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9.  Self-renewal and differentiation of rat epididymal basal cells using a novel in vitro organoid model†.

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Review 10.  In-vitro spermatogenesis through testis modelling: Toward the generation of testicular organoids.

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