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The postnatal development of the rat kidney, with special reference to the chemodifferentiation of the proximal tubule

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Summary

New nephron anlages appear in the renal cortex up to the 4th postnatal day (PD). The last anlages to be formed develop into functional nephrons by PD 10, and the cortex appears mature at PD 12 after formation of the cortex corticis. The renal medulla develops by the longitudinal growth of loops of Henle and collecting ducts. The immature medulla cannot be divided into different zones and corresponds structurally to the later inner stripe of the outer zone. The inner zone is formed by PD 8, and the outer stripe of the outer zone by PD 12. The renal medulla is mature at PD 21.

From the start of its development, the renal proximal tubule consists of the pars convoluta and pars recta. In both parts the formation of the brush border is accompanied by the simultaneous appearance of brush border enzymes (alkaline phosphatase, γ-glutamyltranspeptidase, dipeptidylamino-peptidase IV) and lysosomal enzymes (acid phosphatase, acid β-galactosidase, N-acetylglucosaminidase, dipeptidylaminopeptidase II) over the full length of the proximal tubule. During the course of proximal tubule maturation, however, the lysosomal enzyme activities decline in the pars convoluta (with constant brush border enzyme activities), while the brush border enzyme activities increase in the pars recta (with constant lysosomal enzyme activities). The two parts further differ in that they exhibit different lysosomal patterns from the outset, the pars convoluta containing numerous large, highly enzyme-active lysosomes arranged in groups, and the pars recta containing only a few very small lysosomes with low enzyme activity. Thus, even in the newborn rat, the lysosomal pattern of the pars recta already corresponds to that of the mature S3 segment. The S1 and S2 segments of the pars convoluta first differentiate between PD 10 and 21, as the groups of large lysosomes are progressively broken up and the extent of the lysosomal apparatus is diminished, this proceeding in a retrograde direction from the end of the immature pars convoluta.

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References

  • Arataki M (1926) On the postnatal growth of the kidney, with special reference to the number and size of the glomeruli (Albino rat). Am J Anat 36:369–436

    Google Scholar 

  • Bargmann W (1978) Handbuch der mikroskopischen Anatomie des Menschen, Bd VII/5: Niere und ableitende Harnwege. Springer, Berlin Heidelberg New York, p 444

    Google Scholar 

  • Barka T, Anderson PJ (1962) Histochemical methods for acid phosphatase using hexazonium pararosanilin as coupler. J Histochem Cytochem 10:741–753

    Google Scholar 

  • Baxter JS, Yoffey JM (1948) The postnatal development of renal tubules in the rat. J Anat (Lond) 82:189–197

    Google Scholar 

  • Boss JM, Dlouhá M, Kraus M, Křeček J (1963) The structure of the kidney in relatin to age and diet in white rats during the weaning period. J Physiol 168:196–204

    Google Scholar 

  • Carone FA, Peterson DR, Oparil S, Pulman TN (1979) Renal tubular transport and catabolism of proteins and peptides. Kidney Int 16:271–278

    Google Scholar 

  • Daigeler R (1981) Sex-Dependent Changes in the Rat Kidney after Hypophysectomy. Cell Tissue Res 216:423–443

    Google Scholar 

  • Davies J (1954) Cytological evidence of protein absorption in fetal and adult mammalian kidney. Am J Anat 94:45–62

    Google Scholar 

  • Heidenhain M (1937) Synthetische Morphologie der Niere des Menschen. Leiden, p 270

  • Kazimierczak J (1978) Topography and structure of vasculature in developing cortex of rat kidney. Anat Embryol 153:213–226

    Google Scholar 

  • Larsson L (1975) The Ultrastructure of the developing proximal tubule in the rat kidney. J Ultrastruct Res 51:119–139

    Google Scholar 

  • Larsson L, Maunsbach AB (1975) Differentiation of the vacuolar apparatus in cells of the developing proximal tubule in the rat kidney. J Ultrastruct Res 53:254–270

    Google Scholar 

  • Lojda Z, Gossrau R, Schiebler TH (1979) Enzyme histochemistry. Springer, Berlin Heidelberg New York, p 339

    Google Scholar 

  • Maunsbach AB (1966) Observations on the segmentation of the proximal tubule in the rat kidney. Comparison of results from phase contrast, fluorescence and electron microscopy. J Ultrastruct Res 16:239–258

    Google Scholar 

  • Möllendorff W von (1930) Der Exkretionsapparat. In: Handbuch der mikroskopischen Anatomie des Menschen. Bd VII/1: Harn- und Geschlechtsorgane. Springer, Berlin, pp 1–328

    Google Scholar 

  • Mühlenfeld WE (1969) Über die Entwicklung und Chemodifferenzierung der Rattenniere unter besonderer Berücksichtigung der Geschlechtsunterschiede. Histochemie 18:97–131

    Google Scholar 

  • Neiss WF (1981) Die Histogenese der Henleschen Schleife bei der Wistarratte. Anat Anz 149:95–96

    Google Scholar 

  • Peter K (1909) Untersuchungen über Bau und Entwicklung der Niere. Bd I. Gustav Fischer, Jena

    Google Scholar 

  • Pugh D (1967) The droplets of immature rat kidney. J Anat (Lond) 101:93–97

    Google Scholar 

  • Ricciarelli G (1970) Morphologische Untersuchungen zur postnatalen Entwicklung der Rattenniere. Med Dissertation, Münster

  • Schaeverbeke J, Cheignon M (1980) Differentiation of glomerular filter and tubular reabsorption apparatus during foetal development of the rat kidney. J Embryol Exp Morphol 58:157–175

    Google Scholar 

  • Schiebler TH, Voss J, Pilgrim Ch (1970) The effect of estrogen phosphatases in the developing rat kidney. Exp Cell Res 62:239–248

    Google Scholar 

  • Schiebler TH, Danner KG (1978) The effect of sex hormones on the proximal tubules in the rat kidney. Cell Tissue Res 192:527–549

    Google Scholar 

  • Speller AM, Moffat DB (1977) Tubulo-vascular relationships in the developing kidney. J Anat (Lond) 123:487–500

    Google Scholar 

  • Winckler J (1970a) Zum Einfrieren von Gewebe in Stickstoff gekühltem Propan. Histochemie 23:44–50

    Google Scholar 

  • Winckler J (1970b) Verwendung gefriergetrockneter Kryostatschnitte für histologische und histochemische Untersuchungen. Histochemie 24:168–186

    Google Scholar 

  • Yoshimura F, Nakamura M (1965) Light and electron microscopy on the proximal convoluted tubules during the postnatal development. Okajimas Folia Anat Jpn 41:121–157

    Google Scholar 

  • Zabel M, Schiebler TH (1980) Histochemical, autoradiographic and electron microscopic investigations of the renal proximal tubule of male and female rats after castration. Histochemistry 69:255–276

    Google Scholar 

  • Zeller J (1973) Zur Cytochemie der Lysosomen in der Rattenniere unter normalen und experimentellen Bedingungen. Histochemie 35:235–262

    Google Scholar 

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Supported by the Deutsche Forschungsgemeinschaft (SFB 105)

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Neiss, W.F., Klehn, K.L. The postnatal development of the rat kidney, with special reference to the chemodifferentiation of the proximal tubule. Histochemistry 73, 251–268 (1981). https://doi.org/10.1007/BF00493025

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