| Literature DB >> 31690016 |
Malini Mukherjee1, Eric Fogarty2, Madhusudhana Janga3, Kameswaran Surendran4,5.
Abstract
Kidney development involves formation of nephrons intricately aligned with the vasculature and connected to a branched network of collecting ducts. Notch signaling plays multiple roles during kidney development involving the formation of nephrons composed of diverse epithelial cell types arranged into tubular segments, all the while maintaining a nephron progenitor niche. Here, we review the roles of Notch signaling identified from rodent kidney development and injury studies, while discussing human kidney diseases associated with aberrant Notch signaling. We also review Notch signaling requirement in maintenance of mature kidney epithelial cell states and speculate that Notch activity regulation mediates certain renal physiologic adaptations.Entities:
Keywords: Alagille syndrome; Notch; cell fate selection; congenital anomalies of the kidney; nephrogenesis
Mesh:
Substances:
Year: 2019 PMID: 31690016 PMCID: PMC6920979 DOI: 10.3390/biom9110692
Source DB: PubMed Journal: Biomolecules ISSN: 2218-273X
Figure 1The expression and function of Notch during the early stages of Nephrogenesis. The different stages of mammalian renal nephron development with normal development (on left side) compared to kidney development under deficient Notch signaling conditions (on right side). (A) The nephron progenitor state is maintained through Six2 expression which is normally repressed by Notch signaling to allow cells to begin differentiation within pre-tubular aggregates that become renal vesicles (RV). The RV have distinct segments with Notch ligands having a restricted expression in the distal compartment close to the ureteric bud UB tip. Notch deficiency within the nephron progenitors results in abnormal patterning of the RV. (B) Diagram of the developing nephron at the comma shaped stage. The renal vesicle undergoes further morphological changes from spherical body to comma shaped body. Notch deficiency results in decreased proliferation of Pax2+; Jag1+ cells. (C) Diagram of the developing nephron at the S-shaped stage, which occurs after the comma-shaped stage. The S-shaped body contains distinct proximal, medial, and distal domains. Notch components are expressed differentially in this structure and function to further define the nephron segments. Inactivation of Notch alters nephron segmentation, leads to loss of proximal and medial segments, and abnormal nephron structure.
Phenotypes of mouse models with Notch signaling activity modulated within the developing kidney.
| Regulatory Region Driving Cre/Time Point and Place in Renal System Where Inactivation Occurs | Mouse Model: Genetically Modified Gene and Observed Phenotype | Reference |
|---|---|---|
| Hypomorphic Notch2 alleles (Notch2 del1/del1) | Notch2 del1/del1: Perinatal lethality with hypoplastic kidneys, vascular lesions near cortical region, defective glomerulogenesis, and lack of proper glomeruli | [ |
| Notch 2 +/del1, Jag1 +/−: Half sized kidneys, decrease in glomeruli number, defective glomeruli | ||
| Notch 2 +/del1, Dll1 +/−: No kidney defects | ||
| Global deletions and global overexpression | Psen1 −/−, Psen2 −/− with rescue of severe pre-natal lethality by PSEN1 human expression: | [ |
| Hoxb7->Cre/collecting duct | Human Jag1 gene overexpression: Variable phenotypes including cysts, decreased nephrons, hypoplastic kidneys, hydropelvises, hydroureters along with drastically lowered GDNF expression levels | [ |
| Pax3->Cre/Metanephrogenic Mesenchyme Pre-11.5 | Notch2 f/f: Lethality between P1 and P2 due to renal failure with no filtration apparatus present, smaller kidneys with collapsed renal pelvis, no proximal tubules with intact distal tubules, and lack of proximal podocytes | [ |
| Pax2-Cre/Pre-10.5 renal development | Notch2 f/f: No podocytes or proximal tubules present in kidneys of mutants | |
| RBPJ f/f: Death by E13.5, explant culture revealed lack of proximal tubule and podocytes | ||
| Six2->GFP-Cre/E12.5 onwards in cap mesenchyme | NICD overexpression: Hypoplastic kidneys with only one ureteric branch | |
| Neph->Cre/Podocytes only | NICD overexpression: Proteinuria caused by impaired glomerular filtration selective permeability with progressive glomerulosclerosis and a decrease in mature marker expression (Wt1, Nphs1, and Nphs2) with increased cell cycle activity and increased Pax2 expression | [ |
| Podocin->Cre/Podocytes only | RBPJ f/−: No observable phenotype | |
| RBPJ f/−, NICD overexpression: Rescue of severe selective filtration defect from increased Notch and rescue of Glomerulosclerosis | ||
| Hoxb7->Cre/collecting duct | Mib1 f/f: Unilateral or bilateral hydronephrosis of distended kidneys at P17, reduced number of principal cells, and increased number of intercalated cells | [ |
| Six2->GFP-Cre/E12.5 onwards in cap mesenchyme surrounding ureteric bud tips | N2-ICD overexpression: Lethality after birth and kidneys have glomerular cysts, dilated renal tubules, and thin cortexes | [ |
| Six2->GFP-Cre/E12.5 onwards in cap mesenchyme surrounding ureteric bud tips | Notch2 f/f: Low percentage of renal cysts at P0 with a formation of micro adenomas (proliferating cells) by 52 weeks of age | [ |
| Notch1 f/f: 30% of mutant mice have renal cysts at P0 | ||
| RBPJ f/f: Lethality by P2 in mutants, kidneys have few glomeruli and proximal tubules | ||
| Rarb2->Cre/Condensing mesenchyme | RBPJ f/f: Large proximal tubule cysts present in mutant kidneys | |
| Six2->GFP-Cre/E12.5 onwards in cap mesenchyme surrounding ureteric bud tips | Notch2 f/f: 31% of mutants have smaller kidneys with fewer glomeruli | [ |
| Notch1 +/f; Notch2f/f: 67% of mutants have smaller kidneys with fewer glomeruli, increased blood urea nitrogen levels at birth, reduced life span | ||
| Notch1 f/f, Notch2 f/f: Lethality at P1 with compromised renal function (blood urea nitrogen), few proximal tubules with very few glomeruli | ||
| RBPJ f/f: Mutants mice die at P2 due to insufficient filtration in small kidneys | ||
| Pax3->Cre/Metanephric Mesenchyme Pre-11.5 | Notch2 f/f, Mint f/f: Mint inactivation partially rescues Notch2-deficient phenotype by increasing the number of proximal nephron segments forms | |
| Rarb2->Cre/Condensing mesenchyme | RBPJ f/deletion: Hypoplastic kidneys that develop cysts with death due to increased blood urea levels causing renal failure | [ |
| Hoxb7->Cre/Collecting duct | Adam10 f/f: Hydronephrosis in 30% of mutants with increased water intake, increase urine output, and decreased osmolality; decrease in principal cells and an increase in intercalated cells in collecting duct | [ |
| Six2->GFP-Cre/ | Six2-3XFlag overexpression: Decreased differentiation from mesenchymal progenitors to epithelial tubules | [ |
| RBPJ f/f: Increased Six2+ cells found deeper in medullary, decreased nephron endowment | ||
| N1 f/f, N2 f/f: Increased Six2+ cells found deeper in medullary, decrease in the number nephrons, lack of development of proper nephrons, and renal vesicles failed to form S-shaped bodies | ||
| Hoxb7-Cre/Collecting duct | Rbpj f/−: Increased intercalated cells in collecting duct, decreased expression of Elf5 | [ |
| PS1 −/f and Ps2 −/−: Increased intercalated cell gene expression with decreased principal cell gene expression | ||
| Rosa +/NICD: Increased principal cell gene expression including Elf5 | ||
| Cdh16->Cre/Collecting duct and connecting tubule | Elf5 F/del: Slight decrease in principal cell gene expression | |
| Wnt4->GFP-Cre/Pre-tubular aggregates | Notch1 f/f, Notch2 f/f: Lack of developed nephrons and not just proximal tubules as previously noted, no premature depletion of mesenchymal nephron progenitors | [ |
| NICD overexpression: No effect on nephron differentiation, glomerulocystic kidney phenotype | ||
| Six2->GFP-Cre/E12.5 onwards in cap mesenchyme surrounding ureteric bud tips | Rosa LacZ/NICD: Glomerulocystic kidneys within mutants; heterogeneous nephron cell population segmenting in the nephron, and not just proximal tubule population as previously found | |
| Cdh16->Cre/Collecting duct and connecting tubule | Jag1 f/f: Increase in collecting duct cell types expressing both principal and intercalated proteins with tubules enlarged as well as enclosing fragments of the tubule; hydronephrosis present in adult mice | [ |
| Tfcp2l1 f/f: Absence of intercalated cell development in collecting ducts | ||
| Atp6v1b1->Cre/Intercalated cells of the collecting duct | Jag1 f/f: Increase in cells expressing both principal and intercalated proteins within the collecting duct with decreased principal cells | |
| Tfcp2l1 f/f: Standard ratio of principal to intercalated cells in collecting duct at two weeks of age; by two months the collecting duct contains half of the intercalated cells with decreased intercalated protein expression when compared to wild-type | ||
| EllA-Cre/ | Tfcp2l1 f/f: Lethality post birth; elimination of intercalated cells in collecting duct |
Figure 2Notch signaling in the adult kidney. Notch signaling is active during nephrogenesis, and the signaling is attenuated after birth in the normal kidney. Reactivation of sustained Notch signaling in the adult kidney either due to genetic activation of Notch signaling or triggered by injury promotes pathological states. Ectopic expression of Notch in mature podocytes results in glomerular dysfunction. The proximal tubules are highly susceptible to injury, and following injury, Jag1 expression increases to activate Notch signaling. Continued high (chronic) Notch signaling leads to fibrosis. This progression can be slowed by blocking Notch signaling either by Gamma secretase inhibitors (GSIs) or by genetic ablation of Notch signaling (PEPCKCRE; RBPjf/f). However, a transient increase in Notch after injury maybe beneficial as it initiates the repair process mediated by Sox9+ epithelial cells. In the collecting duct, Notch signaling is required to maintain principal cells (green) in their selected fate. Either increase or decrease of Notch signaling perturbs the ratio of principal cells to intercalated cells seen in normal kidney. Diets such as low potassium or drugs such as lithium also increase intercalated cell numbers at the expense of principal cells, and possibly do so by altering Notch signaling activity.
Renal anomalies in humans associated with mutations in NOTCH2.
| Human Disease | Genetic Mutation | Kidney Defect | References |
|---|---|---|---|
| Alagille Syndrome |
| Small congenital cystic kidney disease | [ |
|
| Tubular acidosis and dysplastic kidneys | [ | |
|
| Vesico-ureteric reflux | [ | |
|
| Echogenicity of kidneys | [ | |
| CAKUT |
| Vesicoureteral reflux | [ |
|
| Small dysplastic kidney, ureterovesical junction obstruction | [ | |
|
| Hydronephrosis | [ | |
| Hajdu–Cheney syndrome |
| Polycystic kidneys | [ |
Kidney diseases associated with alterations in Notch receptors and ligands.
| Gene | Disease | Kidney Disease | References |
|---|---|---|---|
|
| ALGS | Dysplasia (generalized, focal, with vesicoureteral reflux, with renal insufficiency), renal tubular acidosis, vesicoureteral reflux, hydronephrosis, obstruction (retero-pelvic junction, with hydronephrosis), chronic renal failure, endstage renal disease, acute kidney injury, renal lipidosis, renal artery stenosis (bilateral), focal segmental glomerulosclerosis, duplex collecting system | [ |
|
| ALGS | Severe infantile renal disease (small kidneys with cysts bilaterally, renal tubular acidosis, and renal insufficiency), proteinuria that resulted in renal failure, tubular acidosis and dysplastic kidneys, vesicoureteral reflux, echogenicity of kidneys, Neonatal renal failure | [ |
|
| HCS/SFPKS | Cystic disease, hypoplasia, vesicoureteral reflux, glomerulonephritis, hypertension, chronic renal failure, bilateral dysplastic kidneys with numerous, small parenchymal cysts, associated with bilateral, high-grade vesicoureteral reflux | [ |
|
| CADASIL | Focal segmental mesangial proliferation, the loss and degeneration of arterial medial smooth muscle cells and arterial intimal thickening. Immunofluorescence analysis of glomeruli revealed IgA deposition in the mesangial area. Electron microscope analysis revealed electron-dense deposition also in the mesangial area. In addition, granular osmophilic material (GOM) was observed in the extra-glomerular mesangial area and around the vascular smooth muscle cells | [ |
|
| CADASIL | Chronic kidney disease, renal histological analysis showed severe arteriosclerosis and mild interstitial fibrosis | [ |
|
| DKD | Higher Notch1 expression observed in glomerulosclerosis | [ |