• 제목/요약/키워드: Spermatocytogenesis

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Seminiferous Epithelium Cycle and Developmental Stages of Spermatids in the Clethrionomys rufocanus

  • Lee, Jung-Hun
    • 한국발생생물학회지:발생과생식
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    • 제17권2호
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    • pp.87-97
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    • 2013
  • The seminiferous epithelium cycle and developmental stages of spermatids in Clethrionomys rufocanus were observed under a light microscope. The seminiferous epithelium cycle was divided into 8 stages. Type Ad spermatogonia appeared through all stages. Type Ap, In, and B spermatogonia appeared in stages I, II, III, and IV. In the first meiosis prophase, the leptotene spermatocytes appeared from stage V, the zygotene spermatocytes in stages I, VI, VII, VIII, the pachytene spermatocytes from stages II to VI, the diplotene spermatocytes in stage VII. The meiotic figures and interkinesis spermatocytes were observed in stage VIII. Developing spermatids were subdivided into 10 steps, based on the morphological characteristics such as the acrosome formation changes in spermatozoa, nucleus, cytoplasm, and spermiation changes. The C. rufocanus spermatocytogenesis and spermiogenesis results displayed similar results with Apodemus agrarius coreae and A. speciosus peninsulae. Considering all the results, the spermatogenesis may be useful information to analyze the differentiation of spermatogenic cells and the breeding season.

황소개구리 (Rana catesbeiana)의 정자변태과정 중 글리코겐이 정자 성숙에 미치는 역할 (Glycogen Effect of the Sperm Maturation during the Spermiogenesis of Rana catesbeiana)

  • 고송향;이정훈
    • Applied Microscopy
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    • 제31권3호
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    • pp.257-266
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    • 2001
  • 황소개구리의 정자변태과정과 정자형성단계 중에 글리코겐이 정자 성숙에 미치는 역할을 알아보기 위하여 관찰한 결과는 다음과 같았다. 정자변태과정은 핵과 세포질 소기관의 형태적 특징을 토대로 하여 3단계로 나눌 수 있었다. 특히, 정자형성단계 중에서 글리코겐은 정원세포부터 정모세포발생 단계까지는 관찰되지 많았지만, 정자변태단계인 초기 정자세포부터 성숙기까지는 정자세포의 핵과 첨체 및 세포질 내에 존재하고 있었고, 성숙한 정자의 중편부에도 위치하고 있었다. 이러한 사실은 글리코겐이 정자 성숙에 중요한 역할을 수행할 뿐만 아니라 정자의 파동운동에 에너지원으로서 중요한 역할을 할 것으로 사료된다.

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Functions of somatic cells for spermatogenesis in stallions

  • Muhammad, Shakeel;Minjung, Yoon
    • Journal of Animal Science and Technology
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    • 제64권4호
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    • pp.654-670
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    • 2022
  • Spermatogenesis and testis development are highly structured physiological processes responsible for post-pubertal fertility in stallions. Spermatogenesis comprises spermatocytogenesis, meiosis, and spermiogenesis. Although germ cell degeneration is a continuous process, its effects are more pronounced during spermatocytogenesis and meiosis. The productivity and efficiency of spermatogenesis are directly linked to pubertal development, degenerated germ cell populations, aging, nutrition, and season of the year in stallions. The multiplex interplay of germ cells with somatic cells, endocrine and paracrine factors, growth factors, and signaling molecules contributes to the regulation of spermatogenesis. A cell-tocell communication within the testes of these factors is a fundamental requirement of normal spermatogenesis. A noteworthy development has been made recently on discovering the effects of different somatic cells including Leydig, Sertoli, and peritubular myoid cells on manipulation the fate of spermatogonial stem cells. In this review, we discuss the self-renewal, differentiation, and apoptotic roles of somatic cells and the relationship between somatic and germ cells during normal spermatogenesis. We also summarize the roles of different growth factors, their paracrine/endocrine/autocrine pathways, and the different cytokines associated with spermatogenesis. Furthermore, we highlight important matters for further studies on the regulation of spermatogenesis. This review presents an insight into the mechanism of spermatogenesis, and helpful in developing better understanding of the functions of somatic cells, particularly in stallions and would offer new research goals for developing curative techniques to address infertility/subfertility in stallions.

Seminiferous Epithelium Cycle in the Korea Squirrel, Tamias sibiricus

  • Jung Tae-Dong;Lee Jung-Hun
    • 대한의생명과학회지
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    • 제10권3호
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    • pp.275-283
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    • 2004
  • The annual changes in testis weight and diameter of seminiferous tubules, and the seminiferous epithelium cycle of Tamias sibiricus were studied by light microscope. Testis weight and diameter of seminiferous tubule are significantly increased from January to July, and decreased rapidly to the size from August to December. Spermatogenesis occurs from January to July, and spermatocytogenesis are produced from August to December. The cycle of the seminiferous epithelium was divided into 12 stages during the development of spermatids as a changes of the nucleus and acrosomal structure, presence and/or absence of residual body, appearance and/or absence of sperm tail and meiotic figure and spermiation. The dark type spermatogonia (Ad) are appeared in all stages (I ~ XII), and the spermatids of step 10 are observed at I, II, X and XII stages. The spermatids of step 11 are appeared in III and IV stages, only the step 12 spermatid observed in V stage.

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Annual Cycle of the Seminiferous Epithelium of Miniopterus schreibersi fuliginosus

  • Kang Mu-Shik;Lee Jung-Hun
    • 대한의생명과학회지
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    • 제10권4호
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    • pp.435-445
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    • 2004
  • The characteristics of the testis and the annual cycle of the seminiferous epithelium of the Miniopterus schreibersi fuliginosus were examined by optical microscopy. The testis weight and diameter of the seminiferous tubules were increased gradually from May to July, and the highest activity was observed in August. The size then decreased rapidly from October. Spermatogenesis began in May, peaked in August, and was suspended from October to April in the following year. Spermatocytogenesis were produced from May to July. Spermiogenesis occurred from August to September. In particular, immature spematogenic cells in the seminiferous tubules were engulfed by the phagocytosis of Sertoli cells in October. From November to April, the seminiferous tubuly contained only Sertoli cells and Ad spermatogonia. Therefore, the periodic changes in the seminiferous epithelium of M. S. fuliginosus suggest that a long hibernation is an adaptive strategy for the preservation of energy and the regulation of the breeding cycle.

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Phosphamidon 을 투여한 닭 및 랫트 고환의 Apoptosis 에 대한 연구 (Phosphamidon-induced apoptosis in the testis of chickens and rats)

  • 이차수;정재용;박상준;정규식
    • 한국수의병리학회지
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    • 제3권1호
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    • pp.27-33
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    • 1999
  • Phosphamidon(PMD) is orgnophosphate insecticide broadly using in agriculture. In order to study PMD toxicity in the testis, histopathological change and apoptosis were assessed following acute and chronic oral administration in rats and chickens. In acute studies, histopathological changes included necrosis and desquamation of spermatogenic cells, multinucleated giant cells in the lumen of seminiferous tubules, and necrotic cells and the giant cells in the epididymal lumen. Atrophy of seminiferous tubule was seen in the chronic exposure with low doses. The toxic effects of PMD in chronic exposure including clinical signs and histopathological changes were more pronounced in chickens than rats. Apoptosis assessment was performed by TUNEL method and Hoechst staining. TUNEL-positive apoptotic cells were found in spermatocytes of seminiferous tubules, testicular apoptosis was more prominent following acute exposure than control and chronic exposure. Above mentioned result noticed that PMD causes apoptotic death and effects directly the spermatocytogenesis.

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