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Dive into the research topics where Jochen Reiser is active.

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Featured researches published by Jochen Reiser.


Nature Medicine | 2008

The actin cytoskeleton of kidney podocytes is a direct target of the antiproteinuric effect of cyclosporine A

Christian Faul; Mary E. Donnelly; Sandra Merscher-Gomez; Yoon Hee Chang; Stefan Franz; Jacqueline Delfgaauw; Jer Ming Chang; Hoon Young Choi; Kirk N. Campbell; Kwanghee Kim; Jochen Reiser; Peter Mundel

The immunosuppressive action of the calcineurin inhibitor cyclosporine A (CsA) stems from the inhibition of nuclear factor of activated T cells (NFAT) signaling in T cells. CsA is also used for the treatment of proteinuric kidney diseases. As it stands, the antiproteinuric effect of CsA is attributed to its immunosuppressive action. Here we show that the beneficial effect of CsA on proteinuria is not dependent on NFAT inhibition in T cells, but rather results from the stabilization of the actin cytoskeleton in kidney podocytes. CsA blocks the calcineurin-mediated dephosphorylation of synaptopodin, a regulator of Rho GTPases in podocytes, thereby preserving the phosphorylation-dependent synaptopodin–14-3-3β interaction. Preservation of this interaction, in turn, protects synaptopodin from cathepsin L–mediated degradation. These results represent a new view of calcineurin signaling and shed further light on the treatment of proteinuric kidney diseases. Novel calcineurin substrates such as synaptopodin may provide promising starting points for antiproteinuric drugs that avoid the serious side effects of long-term CsA treatment.


Nature Genetics | 2005

TRPC6 is a glomerular slit diaphragm-associated channel required for normal renal function

Jochen Reiser; Krishna R. Polu; Clemens C. Möller; Peter Kenlan; Mehmet M. Altintas; Changli Wei; Christian Faul; Stephanie Herbert; Ivan Villegas; Carmen Avila-Casado; Mary McGee; Hikaru Sugimoto; Dennis Brown; Raghu Kalluri; Peter Mundel; Paula L. Smith; David E. Clapham; Martin R. Pollak

Progressive kidney failure is a genetically and clinically heterogeneous group of disorders. Podocyte foot processes and the interposed glomerular slit diaphragm are essential components of the permeability barrier in the kidney. Mutations in genes encoding structural proteins of the podocyte lead to the development of proteinuria, resulting in progressive kidney failure and focal segmental glomerulosclerosis. Here, we show that the canonical transient receptor potential 6 (TRPC6) ion channel is expressed in podocytes and is a component of the glomerular slit diaphragm. We identified five families with autosomal dominant focal segmental glomerulosclerosis in which disease segregated with mutations in the gene TRPC6 on chromosome 11q. Two of the TRPC6 mutants had increased current amplitudes. These data show that TRPC6 channel activity at the slit diaphragm is essential for proper regulation of podocyte structure and function.


Nature Medicine | 2011

Circulating urokinase receptor as a cause of focal segmental glomerulosclerosis

Changli Wei; Shafic El Hindi; Jing Li; Alessia Fornoni; Nelson Goes; Junichiro Sageshima; Dony Maiguel; S. Ananth Karumanchi; Hui Kim Yap; Moin A. Saleem; Qing-Yin Zhang; Boris Nikolic; Abanti Chaudhuri; Pirouz Daftarian; Eduardo Salido; Armando Torres; Moro O. Salifu; Minnie M. Sarwal; Franz Schaefer; Christian Morath; Vedat Schwenger; Martin Zeier; Vineet Gupta; David Roth; Maria Pia Rastaldi; George W. Burke; Phillip Ruiz; Jochen Reiser

Focal segmental glomerulosclerosis (FSGS) is a cause of proteinuric kidney disease, compromising both native and transplanted kidneys. Treatment is limited because of a complex pathogenesis, including unknown serum factors. Here we report that serum soluble urokinase receptor (suPAR) is elevated in two-thirds of subjects with primary FSGS, but not in people with other glomerular diseases. We further find that a higher concentration of suPAR before transplantation underlies an increased risk for recurrence of FSGS after transplantation. Using three mouse models, we explore the effects of suPAR on kidney function and morphology. We show that circulating suPAR activates podocyte β3 integrin in both native and grafted kidneys, causing foot process effacement, proteinuria and FSGS-like glomerulopathy. Our findings suggest that the renal disease only develops when suPAR sufficiently activates podocyte β3 integrin. Thus, the disease can be abrogated by lowering serum suPAR concentrations through plasmapheresis, or by interfering with the suPAR–β3 integrin interaction through antibodies and small molecules targeting either uPAR or β3 integrin. Our study identifies serum suPAR as a circulating factor that may cause FSGS.


Journal of Clinical Investigation | 2004

Induction of B7-1 in podocytes is associated with nephrotic syndrome

Jochen Reiser; Gero von Gersdorff; Martin Loos; Jun Oh; Katsuhiko Asanuma; Laura Giardino; Maria Pia Rastaldi; Novella Calvaresi; Haruko Watanabe; Karin Schwarz; Christian Faul; Matthias Kretzler; Anne Davidson; Hikaru Sugimoto; Raghu Kalluri; Arlene H. Sharpe; Jordan A. Kreidberg; Peter Mundel

Kidney podocytes and their slit diaphragms form the final barrier to urinary protein loss. This explains why podocyte injury is typically associated with nephrotic syndrome. The present study uncovered an unanticipated novel role for costimulatory molecule B7-1 in podocytes as an inducible modifier of glomerular permselectivity. B7-1 in podocytes was found in genetic, drug-induced, immune-mediated, and bacterial toxin-induced experimental kidney diseases with nephrotic syndrome. The clinical significance of our results is underscored by the observation that podocyte expression of B7-1 correlated with the severity of human lupus nephritis. In vivo, exposure to low-dose LPS rapidly upregulates B7-1 in podocytes of WT and SCID mice, leading to nephrotic-range proteinuria. Mice lacking B7-1 are protected from LPS-induced nephrotic syndrome, suggesting a link between podocyte B7-1 expression and proteinuria. LPS signaling through toll-like receptor-4 reorganized the podocyte actin cytoskeleton in vitro, and activation of B7-1 in cultured podocytes led to reorganization of vital slit diaphragm proteins. In summary, upregulation of B7-1 in podocytes may contribute to the pathogenesis of proteinuria by disrupting the glomerular filter and provides a novel molecular target to tackle proteinuric kidney diseases. Our findings suggest a novel function for B7-1 in danger signaling by nonimmune cells.


Journal of Clinical Investigation | 2010

Specialized roles for cysteine cathepsins in health and disease.

Jochen Reiser; Brian D. Adair; Thomas Reinheckel

Cathepsins were originally identified as proteases that act in the lysosome. Recent work has uncovered nontraditional roles for cathepsins in the extracellular space as well as in the cytosol and nucleus. There is strong evidence that subspecialized and compartmentalized cathepsins participate in many physiologic and pathophysiologic cellular processes, in which they can act as both digestive and regulatory proteases. In this review, we discuss the transcriptional and translational control of cathepsin expression, the regulation of intracellular sorting of cathepsins, and the structural basis of cathepsin activation and inhibition. In particular, we highlight the emerging roles of various cathepsin forms in disease, particularly those of the cardiac and renal systems.


Science Translational Medicine | 2011

Rituximab Targets Podocytes in Recurrent Focal Segmental Glomerulosclerosis

Alessia Fornoni; Junichiro Sageshima; Changli Wei; Sandra Merscher-Gomez; Robier Aguillon-Prada; Alexandra Jauregui; Jing Li; Adela Mattiazzi; Gaetano Ciancio; Linda Chen; Gaston Zilleruelo; Carolyn Abitbol; Jayanthi Chandar; Wacheree Seeherunvong; Camillo Ricordi; Masami Ikehata; Maria Pia Rastaldi; Jochen Reiser; George W. Burke

Rituximab treatment in high-risk patients with focal segmental glomerulosclerosis directly affects podocyte function and is linked to reduced incidence of recurrent proteinuria after kidney transplantation. Rituximab Prods Podocytes to Action Rituximab is a monoclonal antibody against CD20, a protein located on the surface of B cells. It is typically used to treat certain cancers and autoimmune disorders, but has also treated kidney conditions, including focal segmental glomerulosclerosis (FSGS)—a disorder that can affect both pediatric and adult patients. Recurrent FSGS is a problem for 30 to 40% of patients who have undergone kidney transplantation, and can be characterized by progression to end-stage renal disease and recurrence of proteinuria after transplant. Despite the ability of rituximab to treat FSGS, it has been unclear exactly how this drug achieves success in some patients, but not others. Fornoni and colleagues hypothesized that rituximab operates in a B cell–independent manner, targeting instead specific kidney cells called podocytes. To test this hypothesis, Fornoni et al. studied 41 patients at high risk for FSGS: 14 historical control patients who were not treated with rituximab and 27 patients who received rituximab at the time of kidney transplant. They found fewer podocytes with sphingomyelin phosphodiesterase acid-like 3b (SMPDL-3b) protein in biopsies from patients who later developed recurrent FSGS. The authors had also collected serum from all patients before transplant and then later treated normal human podocytes in culture with the sera. Serum from patients who would later develop recurrent FSGS caused a decrease in both SMPDL-3b protein and acid sphingomyelinase activity. This phenomenon was prevented by rituximab. The FSGS serum from patients also disrupted the actin cytoskeleton of cultured podocytes, but pretreatment with rituximab, or even overexpression of SMPDL-3b protein, partially prevented this phenotype. Together, these data suggest that modulation of sphingolipid-related proteins plays a role in the pathogenesis of recurrent FSGS and, moreover, that these proteins and enzymes might be targets of rituximab treatment. With the mechanism solved, rituximab may represent a new therapeutic strategy to prevent recurrent proteinuria after kidney transplantation. Here’s to happy and healthy kidneys! Focal segmental glomerulosclerosis (FSGS) is a glomerular disease characterized by proteinuria, progression to end-stage renal disease, and recurrence of proteinuria after kidney transplantation in about one-third of patients. It has been suggested that rituximab might treat recurrent FSGS through an unknown mechanism. Rituximab not only recognizes CD20 on B lymphocytes, but might also bind sphingomyelin phosphodiesterase acid-like 3b (SMPDL-3b) protein and regulate acid sphingomyelinase (ASMase) activity. We hypothesized that rituximab prevents recurrent FSGS and preserves podocyte SMPDL-3b expression. We studied 41 patients at high risk for recurrent FSGS, 27 of whom were treated with rituximab at time of kidney transplant. SMPDL-3b protein, ASMase activity, and cytoskeleton remodeling were studied in cultured normal human podocytes that had been exposed to patient sera with or without rituximab. Rituximab treatment was associated with lower incidence of posttransplant proteinuria and stabilization of glomerular filtration rate. The number of SMPDL-3b+ podocytes in postreperfusion biopsies was reduced in patients who developed recurrent FSGS. Rituximab partially prevented SMPDL-3b and ASMase down-regulation that was observed in podocytes treated with the sera of patients with recurrent FSGS. Overexpression of SMPDL-3b or treatment with rituximab was able to prevent disruption of the actin cytoskeleton and podocyte apoptosis induced by patient sera. This effect was diminished in cultured podocytes where SMPDL-3b was silenced. Our study suggests that treatment of high-risk patients with rituximab at time of kidney transplant might prevent recurrent FSGS by modulating podocyte function in an SMPDL-3b–dependent manner.


Journal of Clinical Investigation | 2005

Synaptopodin regulates the actin-bundling activity of α-actinin in an isoform-specific manner

Katsuhiko Asanuma; Kwanghee Kim; Jun Oh; Laura Giardino; Sophie Chabanis; Christian Faul; Jochen Reiser; Peter Mundel

Synaptopodin is the founding member of a novel class of proline-rich actin-associated proteins highly expressed in telencephalic dendrites and renal podocytes. Synaptopodin-deficient (synpo(-/-)) mice lack the dendritic spine apparatus and display impaired activity-dependent long-term synaptic plasticity. In contrast, the ultrastructure of podocytes in synpo(-/-) mice is normal. Here we show that synpo(-/-) mice display impaired recovery from protamine sulfate-induced podocyte foot process (FP) effacement and LPS-induced nephrotic syndrome. Similarly, synpo(-/-) podocytes show impaired actin filament reformation in vitro. We further demonstrate that synaptopodin exists in 3 isoforms, neuronal Synpo-short (685 AA), renal Synpo-long (903 AA), and Synpo-T (181 AA). The C terminus of Synpo-long is identical to that of Synpo-T. All 3 isoforms specifically interact with alpha-actinin and elongate alpha-actinin-induced actin filaments. synpo(-/-) mice lack Synpo-short and Synpo-long expression but show an upregulation of Synpo-T protein expression in podocytes, though not in the brain. Gene silencing of Synpo-T abrogates stress-fiber formation in synpo(-/-) podocytes, demonstrating that Synpo-T serves as a backup for Synpo-long in synpo(-/-) podocytes. In concert, synaptopodin regulates the actin-bundling activity of alpha-actinin in highly dynamic cell compartments, such as podocyte FPs and the dendritic spine apparatus.


Journal of The American Society of Nephrology | 2007

Induction of TRPC6 Channel in Acquired Forms of Proteinuric Kidney Disease

Clemens C. Möller; Changli Wei; Mehmet M. Altintas; Jing Li; Anna Greka; Takamoto Ohse; Jeffrey W. Pippin; Maria Pia Rastaldi; Stefan Wawersik; Susan C. Schiavi; Anna Henger; Matthias Kretzler; Stuart J. Shankland; Jochen Reiser

Injury to podocytes and their slit diaphragms typically leads to marked proteinuria. Mutations in the TRPC6 gene that codes for a slit diaphragm-associated, cation-permeable ion channel have been shown recently to co-segregate with hereditary forms of progressive kidney failure. Herein is shown that induced expression of wild-type TRPC6 is a common feature of human proteinuric kidney diseases, with highest induction observed in membranous nephropathy. Cultured podocytes that are exposed to complement upregulate TRPC6 protein. Stimulation of receptor-operated channels in puromycin aminonucleoside-treated podocytes leads to increased calcium influx in a time- and dosage-dependent manner. Mechanistically, it is shown that TRPC6 is functionally connected to the podocyte actin cytoskeleton, which is rearranged upon overexpression of TRPC6. Transient in vivo gene delivery of TRPC6 into mice leads to expression of TRPC6 protein at the slit diaphragm and causes proteinuria. These studies suggest the involvement of TRPC6 in the pathology of nongenetic forms of proteinuric disease.


American Journal of Human Genetics | 2011

Genome-wide studies of copy number variation and exome sequencing identify rare variants in BAG3 as a cause of dilated cardiomyopathy.

Nadine Norton; Duanxiang Li; Mark J. Rieder; Jill D. Siegfried; Evadnie Rampersaud; Stephan Züchner; Steve Mangos; Jorge Gonzalez-Quintana; Libin Wang; Sean McGee; Jochen Reiser; Eden R. Martin; Deborah A. Nickerson; Ray E. Hershberger

Dilated cardiomyopathy commonly causes heart failure and is the most frequent precipitating cause of heart transplantation. Familial dilated cardiomyopathy has been shown to be caused by rare variant mutations in more than 30 genes but only ~35% of its genetic cause has been identified, principally by using linkage-based or candidate gene discovery approaches. In a multigenerational family with autosomal dominant transmission, we employed whole-exome sequencing in a proband and three of his affected family members, and genome-wide copy number variation in the proband and his affected father and unaffected mother. Exome sequencing identified 428 single point variants resulting in missense, nonsense, or splice site changes. Genome-wide copy number analysis identified 51 insertion deletions and 440 copy number variants > 1 kb. Of these, a 8733 bp deletion, encompassing exon 4 of the heat shock protein cochaperone BCL2-associated athanogene 3 (BAG3), was found in seven affected family members and was absent in 355 controls. To establish the relevance of variants in this protein class in genetic DCM, we sequenced the coding exons in BAG3 in 311 other unrelated DCM probands and identified one frameshift, two nonsense, and four missense rare variants absent in 355 control DNAs, four of which were familial and segregated with disease. Knockdown of bag3 in a zebrafish model recapitulated DCM and heart failure. We conclude that new comprehensive genomic approaches have identified rare variants in BAG3 as causative of DCM.


Journal of Clinical Investigation | 2011

COQ6 mutations in human patients produce nephrotic syndrome with sensorineural deafness

Saskia F. Heeringa; Gil Chernin; Moumita Chaki; Weibin Zhou; Alexis Sloan; Ji Z; Letian X. Xie; Leonardo Salviati; Toby W. Hurd; Vega-Warner; Killen Pd; Raphael Y; Shazia Ashraf; Bugsu Ovunc; Dominik S. Schoeb; Heather M. McLaughlin; Rannar Airik; Christopher N. Vlangos; Rasheed Gbadegesin; Bernward Hinkes; Pawaree Saisawat; Eva Trevisson; Mara Doimo; Alberto Casarin; Pertegato; Giorgi G; Holger Prokisch; Agnès Rötig; Gudrun Nürnberg; Christian Becker

Steroid-resistant nephrotic syndrome (SRNS) is a frequent cause of end-stage renal failure. Identification of single-gene causes of SRNS has generated some insights into its pathogenesis; however, additional genes and disease mechanisms remain obscure, and SRNS continues to be treatment refractory. Here we have identified 6 different mutations in coenzyme Q10 biosynthesis monooxygenase 6 (COQ6) in 13 individuals from 7 families by homozygosity mapping. Each mutation was linked to early-onset SRNS with sensorineural deafness. The deleterious effects of these human COQ6 mutations were validated by their lack of complementation in coq6-deficient yeast. Furthermore, knockdown of Coq6 in podocyte cell lines and coq6 in zebrafish embryos caused apoptosis that was partially reversed by coenzyme Q10 treatment. In rats, COQ6 was located within cell processes and the Golgi apparatus of renal glomerular podocytes and in stria vascularis cells of the inner ear, consistent with an oto-renal disease phenotype. These data suggest that coenzyme Q10-related forms of SRNS and hearing loss can be molecularly identified and potentially treated.

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Changli Wei

Rush University Medical Center

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Mehmet M. Altintas

Rush University Medical Center

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Vineet Gupta

Rush University Medical Center

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Nada Alachkar

Johns Hopkins University School of Medicine

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