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Published in: Molecular and Cellular Pediatrics 1/2020

Open Access 01-12-2020 | Research

Shaping of the nephron – a complex, vulnerable, and poorly explored backdrop for noxae impairing nephrogenesis in the fetal human kidney

Author: Will W. Minuth

Published in: Molecular and Cellular Pediatrics | Issue 1/2020

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Abstract

Background

The impairment of nephrogenesis is caused by noxae, all of which are significantly different in molecular composition. These can cause an early termination of nephron development in preterm and low birth weight babies resulting in oligonephropathy. For the fetal human kidney, there was no negative effect reported on the early stages of nephron anlage such as the niche, pretubular aggregate, renal vesicle, or comma-shaped body. In contrast, pathological alterations were identified on subsequently developing S-shaped bodies and glomeruli. While the atypical glomeruli were closely analyzed, the S-shaped bodies and the pre-stages received little attention even though passing the process of nephron shaping. Since micrographs and an explanation about this substantial developmental period were missing, the shaping of the nephron in the fetal human kidney during the phase of late gestation was recorded from a microanatomical point of view.

Results

The nephron shaping starts with the primitive renal vesicle, which is still part of the pretubular aggregate at this point. Then, during extension of the renal vesicle, a complex separation is observed. The medial part of its distal pole is fixed on the collecting duct ampulla, while the lateral part remains connected with the pretubular aggregate via a progenitor cell strand. A final separation occurs, when the extended renal vesicle develops into the comma-shaped body. Henceforth, internal epithelial folding generates the tubule and glomerulus anlagen. Arising clefts at the medial and lateral aspect indicate an asymmetrical expansion of the S-shaped body. This leads to development of the glomerulus at the proximal pole, whereas in the center and at the distal pole, it results in elongation of the tubule segments.

Conclusions

The present investigation deals with the shaping of the nephron in the fetal human kidney. In this important developmental phase, the positioning, orientation, and folding of the nephron occur. The demonstration of previously unknown morphological details supports the search for traces left by the impairment of nephrogenesis, enables to refine the assessment in molecular pathology, and provides input for the design of therapeutic concepts prolonging nephrogenesis.
Literature
1.
go back to reference Black MJ, Sutherland MR, Gubhaju L 2012 Effects of preterm birth on the kidney. Basic Nephrology and Acute Kidney Injury, Prof. Manisha Sahay (Ed.), ISBN: 978-953-51-0139-0, InTech pp 61-88 Black MJ, Sutherland MR, Gubhaju L 2012 Effects of preterm birth on the kidney. Basic Nephrology and Acute Kidney Injury, Prof. Manisha Sahay (Ed.), ISBN: 978-953-51-0139-0, InTech pp 61-88
3.
go back to reference Kandasamy Y, Smith R, Wright IM (2012) Oligonephropathy of prematurity. Am J. Perinat 29(2):115–120CrossRef Kandasamy Y, Smith R, Wright IM (2012) Oligonephropathy of prematurity. Am J. Perinat 29(2):115–120CrossRef
4.
go back to reference Abitbol CL, DeFreitas MJ, Strauss J (2016) Assessment of kidney function in preterm infants: lifelong implications. Pediatr Nephrol 31(12):2213–2222PubMedCrossRef Abitbol CL, DeFreitas MJ, Strauss J (2016) Assessment of kidney function in preterm infants: lifelong implications. Pediatr Nephrol 31(12):2213–2222PubMedCrossRef
5.
6.
go back to reference Paquette K, fernandes RO, Xie LF, Cloutier A, Fallaha C, Girard-Bock C, Mian MOR, Lukaszewski MA, Masse B, El-Jalbout R, Lapeyraque AL, Santos RA, Luu TM, Nuyt AM 2018 Kidney size, renal function, Ang (Angiotensin) peptides, and blood pressure in young adults born preterm. Hypertension 72(4):918-928PubMedCrossRef Paquette K, fernandes RO, Xie LF, Cloutier A, Fallaha C, Girard-Bock C, Mian MOR, Lukaszewski MA, Masse B, El-Jalbout R, Lapeyraque AL, Santos RA, Luu TM, Nuyt AM 2018 Kidney size, renal function, Ang (Angiotensin) peptides, and blood pressure in young adults born preterm. Hypertension 72(4):918-928PubMedCrossRef
7.
go back to reference Crump C, Sundquist J, Winkleby MA, Sundquist K (2019) Preterm birth and risk of chronic kidney disease from childhood into mid-adulthood: national cohort study. BMJ 365:I1346CrossRef Crump C, Sundquist J, Winkleby MA, Sundquist K (2019) Preterm birth and risk of chronic kidney disease from childhood into mid-adulthood: national cohort study. BMJ 365:I1346CrossRef
8.
go back to reference Woods LL, Ingelfinger JR, Nyengaard JR, Rasch R (2001) Maternal protein restriction suppresses the newborn renin-angiotensin system and programs adult hypertension in rats. Pediatr Res 49(4):460–467PubMedCrossRef Woods LL, Ingelfinger JR, Nyengaard JR, Rasch R (2001) Maternal protein restriction suppresses the newborn renin-angiotensin system and programs adult hypertension in rats. Pediatr Res 49(4):460–467PubMedCrossRef
9.
go back to reference Sutherland MR, Bertagnolli M, Lucaszewski MA, Huyard F, Yzydorczyk C, Luu TM, Nuyt AM (2014) Preterm birth and hypertension risk: the oxidative stress paradigm. Hypertension 63(1):12–18PubMedCrossRef Sutherland MR, Bertagnolli M, Lucaszewski MA, Huyard F, Yzydorczyk C, Luu TM, Nuyt AM (2014) Preterm birth and hypertension risk: the oxidative stress paradigm. Hypertension 63(1):12–18PubMedCrossRef
10.
go back to reference Buchholz B, Schley G, Eckhardt KU (2016) The impact of hypoxia on nephrogenesis. Curr Opin Nephrol Hypertens 25(3):180–186PubMedCrossRef Buchholz B, Schley G, Eckhardt KU (2016) The impact of hypoxia on nephrogenesis. Curr Opin Nephrol Hypertens 25(3):180–186PubMedCrossRef
11.
go back to reference Nguyen MU, Wallace MJ, Pepe S, Menheniott TR, Moss TJ, Burgner D (2015) Perinatal inflammation: a common factor in the early origins of cardiovascular disease? Clin Sci (Lond) 129(8):769–784CrossRef Nguyen MU, Wallace MJ, Pepe S, Menheniott TR, Moss TJ, Burgner D (2015) Perinatal inflammation: a common factor in the early origins of cardiovascular disease? Clin Sci (Lond) 129(8):769–784CrossRef
12.
go back to reference Schreuder MF, Rr B, Allegaert K (2014) The interplay between drugs and the kidney in premature neonates. Pediatr Nephrol 29(11):2083–2091PubMedCrossRef Schreuder MF, Rr B, Allegaert K (2014) The interplay between drugs and the kidney in premature neonates. Pediatr Nephrol 29(11):2083–2091PubMedCrossRef
13.
go back to reference Girardi A, Raschi E, Galletti S, Poluzzi E, Faldella G, Allegaert K, De Ponti F (2015) Drug-induced renal damage in preterm neonates: state of the art and methods for early detection. Drug Saf 38(6):535–551PubMedPubMedCentralCrossRef Girardi A, Raschi E, Galletti S, Poluzzi E, Faldella G, Allegaert K, De Ponti F (2015) Drug-induced renal damage in preterm neonates: state of the art and methods for early detection. Drug Saf 38(6):535–551PubMedPubMedCentralCrossRef
14.
go back to reference Fryer HJ, Welsh GI (2019) Renal consequences of therapeutic interventions in premature neonates. Nephron 142(2):117–124PubMedCrossRef Fryer HJ, Welsh GI (2019) Renal consequences of therapeutic interventions in premature neonates. Nephron 142(2):117–124PubMedCrossRef
15.
go back to reference Stefanovic V (2019) The extended use of eculizumab in pregnancy and complement activation-associated diseases affecting maternal, fetal and neonatal kidneys – the future is now? J Clin Med 8:407PubMedCentralCrossRef Stefanovic V (2019) The extended use of eculizumab in pregnancy and complement activation-associated diseases affecting maternal, fetal and neonatal kidneys – the future is now? J Clin Med 8:407PubMedCentralCrossRef
16.
go back to reference Abdel-Hakeem AK, Henry TQ, Magee TR, Desal M, Ross MG, Mansano RZ, Torday JS, Nast CC 2008 Mechanisms of impaired nephrogenesis with fetal growth restriction: altered renal transcription and growth factor expression. Am J Obstet Gynecol 199(3):252.e1-7PubMedCentralCrossRef Abdel-Hakeem AK, Henry TQ, Magee TR, Desal M, Ross MG, Mansano RZ, Torday JS, Nast CC 2008 Mechanisms of impaired nephrogenesis with fetal growth restriction: altered renal transcription and growth factor expression. Am J Obstet Gynecol 199(3):252.e1-7PubMedCentralCrossRef
17.
go back to reference Rumballe BA, Georgas KM, Combes AN, Ju AL, Gilbert T, Little MH (2011) Nephron formation adopts a novel spatial topology at cessation of neohrogenesis. Dev Biol 360(1):110–122PubMedPubMedCentralCrossRef Rumballe BA, Georgas KM, Combes AN, Ju AL, Gilbert T, Little MH (2011) Nephron formation adopts a novel spatial topology at cessation of neohrogenesis. Dev Biol 360(1):110–122PubMedPubMedCentralCrossRef
18.
go back to reference Awazu M, Hida M (2015) Maternal nutrition restriction inhibits ureteric bud branching but does not affect the duration of nephrogenesis in rats. Pediatr Res 77(5):633–639PubMedCrossRef Awazu M, Hida M (2015) Maternal nutrition restriction inhibits ureteric bud branching but does not affect the duration of nephrogenesis in rats. Pediatr Res 77(5):633–639PubMedCrossRef
19.
go back to reference Yu M, Tan L, chen J, Zhai Y, Wu X, Xu H, Shen Q 2019 Intrauterine low-protein diet disturbs metanephric gen expression and induces urinary tract developmental abnormalies in mice. Biochem Biophys Res Commun 513(3):732-739 Yu M, Tan L, chen J, Zhai Y, Wu X, Xu H, Shen Q 2019 Intrauterine low-protein diet disturbs metanephric gen expression and induces urinary tract developmental abnormalies in mice. Biochem Biophys Res Commun 513(3):732-739
20.
go back to reference Rabadi MM, Abdulmahdi W, Nesi L, Jules E, Marghani Y, Sheinin E, Tilzer J, Gupta S, Chen S, Cassimatis ND, Lipphardt M, Kozlowski PB, Ratliff BB (2018) Maternal malnourishment induced upregulation of fetuin-B blunts nephrogenesis in the low birth weight neonate. Dev Biology 443(1):78–91CrossRef Rabadi MM, Abdulmahdi W, Nesi L, Jules E, Marghani Y, Sheinin E, Tilzer J, Gupta S, Chen S, Cassimatis ND, Lipphardt M, Kozlowski PB, Ratliff BB (2018) Maternal malnourishment induced upregulation of fetuin-B blunts nephrogenesis in the low birth weight neonate. Dev Biology 443(1):78–91CrossRef
21.
go back to reference Kispert A, Vainio S, McMahon AP (1998) Wnt-4 is a mesenchymal signal for epithelial transformation of metanephroc mesenchyme in the developing kidney. Development 125(21):4225–4234PubMed Kispert A, Vainio S, McMahon AP (1998) Wnt-4 is a mesenchymal signal for epithelial transformation of metanephroc mesenchyme in the developing kidney. Development 125(21):4225–4234PubMed
22.
go back to reference Tan Z, Shan J, Rak-Raszewska A, Vainio SJ (2018) Embryonic stem cells derived kidney organoids as faithful models to target programmed nephrogenesis. Sci Rep 8(1):16618PubMedPubMedCentralCrossRef Tan Z, Shan J, Rak-Raszewska A, Vainio SJ (2018) Embryonic stem cells derived kidney organoids as faithful models to target programmed nephrogenesis. Sci Rep 8(1):16618PubMedPubMedCentralCrossRef
23.
go back to reference Lindström NO, De Sena BG, Tran T, Ransick A, Suh G, Guo J, Kim AD, Parvez RK, Ruffins SW, Rutledge EA, Thornton ME, Grubbs B, McMahon JA, Smith AD, McMahon AP (2018) Progressive recruitment of mesenchymal progenitor cells reveals a time-dependent process of cell fate acquisition in mouse and human nephrogenesis. J Am Soc Nephrol 45(5):651–660 Lindström NO, De Sena BG, Tran T, Ransick A, Suh G, Guo J, Kim AD, Parvez RK, Ruffins SW, Rutledge EA, Thornton ME, Grubbs B, McMahon JA, Smith AD, McMahon AP (2018) Progressive recruitment of mesenchymal progenitor cells reveals a time-dependent process of cell fate acquisition in mouse and human nephrogenesis. J Am Soc Nephrol 45(5):651–660
24.
go back to reference Barnett C, Nnoli O, Abdulmahdi W, Nesi L, Shen M, Zullo JA, Payne DL, Azar T, Dwivedi P, Syed K, Gromis J, Lipphardt M, Jules E, Maranda EL, Patel A, Rabadi MM, Ratliff BB (2017) Low birth weight is associated with impaired murine kidney development and function. Pediatr Res 82(2):340–348PubMedCrossRef Barnett C, Nnoli O, Abdulmahdi W, Nesi L, Shen M, Zullo JA, Payne DL, Azar T, Dwivedi P, Syed K, Gromis J, Lipphardt M, Jules E, Maranda EL, Patel A, Rabadi MM, Ratliff BB (2017) Low birth weight is associated with impaired murine kidney development and function. Pediatr Res 82(2):340–348PubMedCrossRef
25.
go back to reference Almeida JR, Mandarim-de-Lacerda CA (2002) Quantitative study of the comma-shaped body, S-shaped body and vascularized glomerulus in the second and third human gestational trimester. Early Hum Dev 69(1-2):1–13PubMedCrossRef Almeida JR, Mandarim-de-Lacerda CA (2002) Quantitative study of the comma-shaped body, S-shaped body and vascularized glomerulus in the second and third human gestational trimester. Early Hum Dev 69(1-2):1–13PubMedCrossRef
26.
go back to reference Rodriguez MM, Gömez AH, Abitbol CL, Chandar JJ, Duara S, Zilleruelo GE (2004) Histomorphognetric analysis of postnatal glomerulogenesis in extremely preterm infants. Pediatr Dev Pathol 7(1):17–25PubMedCrossRef Rodriguez MM, Gömez AH, Abitbol CL, Chandar JJ, Duara S, Zilleruelo GE (2004) Histomorphognetric analysis of postnatal glomerulogenesis in extremely preterm infants. Pediatr Dev Pathol 7(1):17–25PubMedCrossRef
27.
go back to reference Callaway DA, McGill-Vargas LL, Quinn A, Jordan JL, Winter LA, Anzueto D, Dick EJ, Blanco CL (2018) Prematurity disrupts glomeruli development while prematurity and hyperglycemia lead to altered nephron maturation and increased oxidative stress in newborn baboons. Pediatr Res 83(3):702–711PubMedPubMedCentralCrossRef Callaway DA, McGill-Vargas LL, Quinn A, Jordan JL, Winter LA, Anzueto D, Dick EJ, Blanco CL (2018) Prematurity disrupts glomeruli development while prematurity and hyperglycemia lead to altered nephron maturation and increased oxidative stress in newborn baboons. Pediatr Res 83(3):702–711PubMedPubMedCentralCrossRef
28.
go back to reference Sutherland MR, Gubhaju L, Moore L, Kent AL, Dahlstrom JE, Horne RSC, Hoy WE, Bertram JF, Black MJ (2011) Accelerated maturation and abnormal morphology in the preterm neonatal kidney. J Am Soc Nephrol 22:1365–1374PubMedPubMedCentralCrossRef Sutherland MR, Gubhaju L, Moore L, Kent AL, Dahlstrom JE, Horne RSC, Hoy WE, Bertram JF, Black MJ (2011) Accelerated maturation and abnormal morphology in the preterm neonatal kidney. J Am Soc Nephrol 22:1365–1374PubMedPubMedCentralCrossRef
29.
go back to reference Ryan D, Sutherland MR, Flores TJ, Al K, Dahlstrom JE, Puelles VG, Bertram JF, McMahon AP, Little MH, Moore L, Black MJ (2018) Development of the human fetal kidney from mid to late gestation in male and female infants. EBioMedicine 27:275–283PubMedCrossRef Ryan D, Sutherland MR, Flores TJ, Al K, Dahlstrom JE, Puelles VG, Bertram JF, McMahon AP, Little MH, Moore L, Black MJ (2018) Development of the human fetal kidney from mid to late gestation in male and female infants. EBioMedicine 27:275–283PubMedCrossRef
30.
go back to reference Faa G, Gerosa C, Fanni D, Nemolata S, Locci A, Cabras T, Marinelli V, Puddu M, Zaffanello M, Monga G, Fanos V (2010) Marked interindividual variability in renal maturation of preterm infants: lessons from autopsy. J Matern Fetal Neonatal Med 3:129–133CrossRef Faa G, Gerosa C, Fanni D, Nemolata S, Locci A, Cabras T, Marinelli V, Puddu M, Zaffanello M, Monga G, Fanos V (2010) Marked interindividual variability in renal maturation of preterm infants: lessons from autopsy. J Matern Fetal Neonatal Med 3:129–133CrossRef
31.
go back to reference Black MJ, Sutherland MR, Gubhaju L, Kent AL, Dahlstrom JE, Moore L (2013) When birth comes early: effects on nephrogenesis. Nephrology (Carlton) 18(3):180–182CrossRef Black MJ, Sutherland MR, Gubhaju L, Kent AL, Dahlstrom JE, Moore L (2013) When birth comes early: effects on nephrogenesis. Nephrology (Carlton) 18(3):180–182CrossRef
32.
go back to reference Gubhaju L, Sutherland MR, Yoder BA, Zulli A, Bertram JF, Black MJ (2009) Is nephrogenesis affected by preterm birth? Studies in a non-human primate model. Am J Physiol Renal Physiol 297(6):F1668–F1677PubMedPubMedCentralCrossRef Gubhaju L, Sutherland MR, Yoder BA, Zulli A, Bertram JF, Black MJ (2009) Is nephrogenesis affected by preterm birth? Studies in a non-human primate model. Am J Physiol Renal Physiol 297(6):F1668–F1677PubMedPubMedCentralCrossRef
33.
go back to reference Gubhaju L, Sutherland MR, Horne RS, Medhurst A, Kent AL, Ramsden A, Moore L, Singh G, Hoy WE, Black MJ (2014) Assessment of renal functional maturation and injury in preterm neonates during the first month of life. Am J Physiol Renal Physiol 307(2):F149–F158PubMedCrossRef Gubhaju L, Sutherland MR, Horne RS, Medhurst A, Kent AL, Ramsden A, Moore L, Singh G, Hoy WE, Black MJ (2014) Assessment of renal functional maturation and injury in preterm neonates during the first month of life. Am J Physiol Renal Physiol 307(2):F149–F158PubMedCrossRef
35.
go back to reference O’Brien LL, Combes AN, Short KM, Lindström NO, Whitney PT, Cullen-McEven LA, Ju A, Abdelhalim A, Michos O, Bertram JF, Smyth IM, Little MH, McMahon AP (2018) Wnt11 directs nephron progenitor polarity and motile behavior ultimately determining nephron endowment. eLife 7:e40392PubMedPubMedCentralCrossRef O’Brien LL, Combes AN, Short KM, Lindström NO, Whitney PT, Cullen-McEven LA, Ju A, Abdelhalim A, Michos O, Bertram JF, Smyth IM, Little MH, McMahon AP (2018) Wnt11 directs nephron progenitor polarity and motile behavior ultimately determining nephron endowment. eLife 7:e40392PubMedPubMedCentralCrossRef
36.
go back to reference Minuth WW (2019) Key features of the nephrogenic zone in the fetal human kidney – hardly known but relevant for the detection of first traces impairing nephrogenesis. Cell Tissue Research 375(3):589–603PubMedCrossRef Minuth WW (2019) Key features of the nephrogenic zone in the fetal human kidney – hardly known but relevant for the detection of first traces impairing nephrogenesis. Cell Tissue Research 375(3):589–603PubMedCrossRef
38.
go back to reference Raduly G, Pap Z, Denes L, Szanto A, Lungu VE, Ghizdavat A, Pavai Z (2017) Preliminary examination of the histological aspects of human fetal kidney. Revista Romana de Anatomie functionala si clinica, macro- si microscopica si de Antropologie XVI 4:295–299 Raduly G, Pap Z, Denes L, Szanto A, Lungu VE, Ghizdavat A, Pavai Z (2017) Preliminary examination of the histological aspects of human fetal kidney. Revista Romana de Anatomie functionala si clinica, macro- si microscopica si de Antropologie XVI 4:295–299
39.
go back to reference Velichety SD, Thyagaraju K, Vishnubhotla SK, Kukar BR (2019) Chronology of nephrogenic events in staged aborted human embryos and fetuses. Int J Anat Res 7(1):6026–6034CrossRef Velichety SD, Thyagaraju K, Vishnubhotla SK, Kukar BR (2019) Chronology of nephrogenic events in staged aborted human embryos and fetuses. Int J Anat Res 7(1):6026–6034CrossRef
40.
go back to reference Holmquist Mengelbier L, Lindell-Munther S, Yasui H, Jansson C, Esfandyari J, Karlsson J, Lau K, Hui C, Bexell D, Hopyan S, Gisselsson D (2019) The Iroquois homeobox proteins IRX3 and IRX5 have dintinct roles in Wilms tumour development and human nephrogenesis. J Pathol 247:86–98PubMedCrossRef Holmquist Mengelbier L, Lindell-Munther S, Yasui H, Jansson C, Esfandyari J, Karlsson J, Lau K, Hui C, Bexell D, Hopyan S, Gisselsson D (2019) The Iroquois homeobox proteins IRX3 and IRX5 have dintinct roles in Wilms tumour development and human nephrogenesis. J Pathol 247:86–98PubMedCrossRef
41.
go back to reference Oxburgh L, Muthukrishnan SD, Brown A (2017) Growth factor regulation in the nephrogenic zone of the developing kidney. Results Probl Cell Differ 60:137–164PubMedCrossRef Oxburgh L, Muthukrishnan SD, Brown A (2017) Growth factor regulation in the nephrogenic zone of the developing kidney. Results Probl Cell Differ 60:137–164PubMedCrossRef
43.
go back to reference Lindström NO, Guo J, Kim AD, Tran T, Guo Q, De Sena BG, Ransick A, Parvez RK, Thornton ME, Baskin L, Grubbs B, McMahon JA, Smith AD, McMahon AP (2018) Conserved and different features of mesenchymal progenitor cell types within the cortical nephrogenic niche of the human and mouse kidney. J Am Soc Nephrol 29(3):806–824PubMedPubMedCentral Lindström NO, Guo J, Kim AD, Tran T, Guo Q, De Sena BG, Ransick A, Parvez RK, Thornton ME, Baskin L, Grubbs B, McMahon JA, Smith AD, McMahon AP (2018) Conserved and different features of mesenchymal progenitor cell types within the cortical nephrogenic niche of the human and mouse kidney. J Am Soc Nephrol 29(3):806–824PubMedPubMedCentral
44.
go back to reference Georgas K, RumballeB VMT, Chiu HS, Thiagarajan RD, Lesieur E, Aronow BJ, Brunskill EW, Combes AN, Tang D, Taylor D, Grimmond SM, Potter SS, McMahon AP, Little MH (2009) Analysis of early nephron patterning reveals a role for distal RV proliferation in fusion to the ureteric tip via a cap mesenchyme-derived connecting segment. Developmental Biology 332:273–286PubMedCrossRef Georgas K, RumballeB VMT, Chiu HS, Thiagarajan RD, Lesieur E, Aronow BJ, Brunskill EW, Combes AN, Tang D, Taylor D, Grimmond SM, Potter SS, McMahon AP, Little MH (2009) Analysis of early nephron patterning reveals a role for distal RV proliferation in fusion to the ureteric tip via a cap mesenchyme-derived connecting segment. Developmental Biology 332:273–286PubMedCrossRef
45.
go back to reference Yang Z, Zimmermann S, Brakeman PR, Beaudoin GM, Reichardt LF, Marciano DK (2013) De novo lumen formation and elongation in the developing nephron: a central role for afadin in apical polarity. Development 140(8):1774–1784PubMedPubMedCentralCrossRef Yang Z, Zimmermann S, Brakeman PR, Beaudoin GM, Reichardt LF, Marciano DK (2013) De novo lumen formation and elongation in the developing nephron: a central role for afadin in apical polarity. Development 140(8):1774–1784PubMedPubMedCentralCrossRef
46.
go back to reference Marciano DK (2017) A holey pursuit: lumen formation in the developing kidney. Pediatr Nephrol 32(1):7–20PubMedCrossRef Marciano DK (2017) A holey pursuit: lumen formation in the developing kidney. Pediatr Nephrol 32(1):7–20PubMedCrossRef
47.
go back to reference Kao RM, Vasilyev A, Miyawaki A, Drummond IA, McMohon AP (2012) Invasion of distal nephron precursors associates with tubular interconnection during nephrogenesis. J Am Soc Nephrol 23:1682–1690PubMedPubMedCentralCrossRef Kao RM, Vasilyev A, Miyawaki A, Drummond IA, McMohon AP (2012) Invasion of distal nephron precursors associates with tubular interconnection during nephrogenesis. J Am Soc Nephrol 23:1682–1690PubMedPubMedCentralCrossRef
48.
go back to reference Lindström NO, Lawrence ML, Burn SF, Johansson JA, Bakker ERM, Ridgway RA, Chang CH, Karolak MJ, Oxburgh L, Headon DJ, Sansom OJ, Smith R, Davies JA, Hohenstein P (2015) Integrated β-catenin, BMP, PTEN, and Notch signaling patterns the nephron. eLife 4:e04000PubMedCentralCrossRef Lindström NO, Lawrence ML, Burn SF, Johansson JA, Bakker ERM, Ridgway RA, Chang CH, Karolak MJ, Oxburgh L, Headon DJ, Sansom OJ, Smith R, Davies JA, Hohenstein P (2015) Integrated β-catenin, BMP, PTEN, and Notch signaling patterns the nephron. eLife 4:e04000PubMedCentralCrossRef
49.
go back to reference Ivanova L, Hiatt MJ, Yoder MC, Taranatal AF, Matsell DG (2010) Ontogeny of CD24 in the human kidney. Kidney Int 77:1123–1133PubMedCrossRef Ivanova L, Hiatt MJ, Yoder MC, Taranatal AF, Matsell DG (2010) Ontogeny of CD24 in the human kidney. Kidney Int 77:1123–1133PubMedCrossRef
50.
go back to reference Zhang P, Gu L, Cong J, Zhang J, Thomsen JS, Andreasen A, Chang SJ, Deng SQ, Xing J, Zhai XY (2019) Morphology of the initial nephron-collecting duct connection in mice using computerized 3D tracing and electron microscopy. Biochem Biophys Res Commun 509(1):114–118PubMedCrossRef Zhang P, Gu L, Cong J, Zhang J, Thomsen JS, Andreasen A, Chang SJ, Deng SQ, Xing J, Zhai XY (2019) Morphology of the initial nephron-collecting duct connection in mice using computerized 3D tracing and electron microscopy. Biochem Biophys Res Commun 509(1):114–118PubMedCrossRef
51.
go back to reference Fanos V, Gerosa C, Loddo C, Faa G (2019) State of the art on kidney development: how nephron endowment at birth can shape our susceptibility to renal dysfunction later in life. Am J Perinatol 36(52):S33–S36PubMed Fanos V, Gerosa C, Loddo C, Faa G (2019) State of the art on kidney development: how nephron endowment at birth can shape our susceptibility to renal dysfunction later in life. Am J Perinatol 36(52):S33–S36PubMed
52.
go back to reference Yermalovich AV, Osborne JK, Sousa P, Han A, Kinney MA, Chen MJ, Robinton DA, Montie H, Pearson DS, Wilson SB, Combes AN, Little MH, Daley GQ (2019) Lin28 and let-7 regulate the timing of cessation of murine nephrogenesis. Nat Commun 10(1):168PubMedPubMedCentralCrossRef Yermalovich AV, Osborne JK, Sousa P, Han A, Kinney MA, Chen MJ, Robinton DA, Montie H, Pearson DS, Wilson SB, Combes AN, Little MH, Daley GQ (2019) Lin28 and let-7 regulate the timing of cessation of murine nephrogenesis. Nat Commun 10(1):168PubMedPubMedCentralCrossRef
53.
go back to reference Minuth WW (2018) Action plan for prolongation of nephrogenesis in preterm and growth restricted babies: explore ultrastructure of the nephrogenic zone, identify a molecular target, select a viable drug and find a path for administration. Drug Res 68(1):5–16CrossRef Minuth WW (2018) Action plan for prolongation of nephrogenesis in preterm and growth restricted babies: explore ultrastructure of the nephrogenic zone, identify a molecular target, select a viable drug and find a path for administration. Drug Res 68(1):5–16CrossRef
54.
go back to reference Miyoshi T, Hiratsuka K, Saiz EG, Morizane R (2019) Kidney organoids in translational medicine: disease modeling and regenerative medicine. Dev Dyn 249(1):34–45PubMedCrossRefPubMedCentral Miyoshi T, Hiratsuka K, Saiz EG, Morizane R (2019) Kidney organoids in translational medicine: disease modeling and regenerative medicine. Dev Dyn 249(1):34–45PubMedCrossRefPubMedCentral
55.
go back to reference Minuth WW (2019) In search of imprints left by the impairment of nephrogenesis. Cells Tissues Organs 207(2):69–82PubMedCrossRef Minuth WW (2019) In search of imprints left by the impairment of nephrogenesis. Cells Tissues Organs 207(2):69–82PubMedCrossRef
56.
go back to reference Wang X, Garrett MR (2017) Nephron number, hypertension, and CDK: physiological and genetic insight from humans and animal models. Physiol Genomics 49(3):180–192PubMedPubMedCentralCrossRef Wang X, Garrett MR (2017) Nephron number, hypertension, and CDK: physiological and genetic insight from humans and animal models. Physiol Genomics 49(3):180–192PubMedPubMedCentralCrossRef
57.
go back to reference El-Dahr SS, Saifudeen Z (2019) Epigenetic regulation of renal development. Semin Cell Dev Biol 91:111–118PubMedCrossRef El-Dahr SS, Saifudeen Z (2019) Epigenetic regulation of renal development. Semin Cell Dev Biol 91:111–118PubMedCrossRef
58.
go back to reference O’Brien LL, McMahon AP (2014) Induction and patterning of the metanephric nephron. Semin Cell Dev Biol 36:31–38PubMedCrossRef O’Brien LL, McMahon AP (2014) Induction and patterning of the metanephric nephron. Semin Cell Dev Biol 36:31–38PubMedCrossRef
59.
go back to reference Saxen L (1999) What is needed for kidney differentiation and how we can find it? Int J Dev Biol 43:377–380PubMed Saxen L (1999) What is needed for kidney differentiation and how we can find it? Int J Dev Biol 43:377–380PubMed
60.
go back to reference Kobayashi A, Valerius MT, Mugford JW, Carroll TJ, Self M, Oliver G, McMahon AP (2008) Six2 defines and regulates a multipotent self-renewing nephron progenitor population throughout mammalian kidney development. Cell Stem Cell 3:169–181PubMedPubMedCentralCrossRef Kobayashi A, Valerius MT, Mugford JW, Carroll TJ, Self M, Oliver G, McMahon AP (2008) Six2 defines and regulates a multipotent self-renewing nephron progenitor population throughout mammalian kidney development. Cell Stem Cell 3:169–181PubMedPubMedCentralCrossRef
Metadata
Title
Shaping of the nephron – a complex, vulnerable, and poorly explored backdrop for noxae impairing nephrogenesis in the fetal human kidney
Author
Will W. Minuth
Publication date
01-12-2020
Publisher
Springer Berlin Heidelberg
Published in
Molecular and Cellular Pediatrics / Issue 1/2020
Electronic ISSN: 2194-7791
DOI
https://doi.org/10.1186/s40348-020-0094-9

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