PHYSIOLOGICAL AND REPARATIVE REGENERATION OF HAIR ROOT EPITELIOCYTES


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Abstract

The physiological and reparative regeneration of epithelial cells of human and mouse hair roots was studied at the level of light microscopy. Comparison and analysis of longitudinal and transverse sections of hair roots at different levels. Reactive cell changes in the area of the hair follicle were identified and described. The cyclic activity of hair growth and sources of cambial cells of hair follicles were studied. At the stages of catagen and telogen (stages of stunting and dormancy during physiological regeneration), reduction of cells of the internal root sheath is noted. During reparative regeneration, only reactive changes in these cells were observed. During physiological regeneration at the catagen stage, mitoses of the cells of the external epithelial sheath are usually localized, and during reparative regeneration they are visible around the entire circumference of the hair follicle. It was shown that the state of epithelial cells of hair roots, especially cell of hair matrix, allows more accurate orientation within the perinecrotic area of the wound on the skin surface.

About the authors

V. D Petrov

S.M. Kirov Military Medical Academy of the Ministry of Defense of the Russian Federation

St. Petersburg, Russia

O. E Mirgorodskaya

S.M. Kirov Military Medical Academy of the Ministry of Defense of the Russian Federation

St. Petersburg, Russia

References

  1. Гололобов, В.Г. Органы опорно-двигательной системы. Гистогенез и регенерация / В.Г. Гололобов, И.А. Одинцова. - СПб., 2010. - 28 c.
  2. Горячкина. В.Л. Физиология волосяных фолликулов / В.Л. Горячкина [и др.] // Российский журнал кожных и венерических болезней. - 2015. - №3. - С.54-62.
  3. Данилов, Р.К. Раневой процесс: гистогенетические основы / Р.К. Данилов. - СПб.: ВМедА, 2007. - 380 c.
  4. Руководство по гистологии / Под ред. Р. К. Данилова. - Изд. 2-е, испр. и доп. - Т.2. - СПб.: СпецЛит, 2011. - 831 c.
  5. Ali, N. Regulatory cells in skin facilitate epithelial stem cell differentiation / N. Ali [et al.] // Сell. - 2017. - Vol.169. - P.1-11.
  6. Dekoninck, S. Stem cell dynamics, migration and plasticity during wound healing / S. Dekoninck, Blanpain // Nature Cell Biology. - 2019. - Vol.21. - P.18-24.
  7. Jang, H. Metabolism in embryonic and cancer stemness / H. Jang [et al.] // Archives of Pharmacal Research. - 2015. - Vol.38. - Р.381-388.
  8. Ling, G. Restores hair follicle-inductive capacity of skin-derived precursors / G. Ling // Scientific reports. - 2019. - Vol.9. - Р.1-10.
  9. Lemasters, J.J. Compartmentation of mitochondrial and oxidative metabolism in growing hair follicles: a ring of fire / J.J. Lemasters [et al.] // Journal of Investigative Dermatology. - 2017. - Vol.137. - Р.1434-1444.
  10. Siiri, E.I. Comparative regenerative mechanisms across different mammalian tissues / E.I. Siiri // Regenerative Medicine. 2018. Vol.6. Р.1-20.
  11. Tang, Y. Mitochondrial aerobic respiration is activated during hair follicle stem cell differentiation, and its dysfunction retards hair regeneration / Y. Tang [et al.] // Peer J. - 2016. - Vol.4. - Р.1-15.
  12. Wang, X. Hair follicle and sebaceous gland de novo regeneration with cultured epidermal stem cells and skin-derived / X. Wang [et al.] // Stem Cells Translational Medicine. - 2016. - Vol.5. - Р.1695-1706.

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Copyright (c) 2020 Petrov V.D., Mirgorodskaya O.E.

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