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Featured researches published by Alba Carrea.


Journal of The American Society of Nephrology | 2003

Broadening the Spectrum of Diseases Related to Podocin Mutations

Gianluca Caridi; Roberta Bertelli; Marco Di Duca; Monica Dagnino; Francesco Emma; Andrea Onetti Muda; Francesco Scolari; Nunzia Miglietti; Gianna Mazzucco; Luisa Murer; Alba Carrea; Laura Massella; Gianfranco Rizzoni; Francesco Perfumo; Gian Marco Ghiggeri

A total of 179 children with sporadic nephrotic syndrome were screened for podocin mutations: 120 with steroid resistance, and 59 with steroid dependence/frequent relapses. Fourteen steroid-resistant patients presented homozygous mutations that were associated with early onset of proteinuria and variable renal lesions, including one case with mesangial C3 deposition. Single mutations of podocin were found in four steroid-resistant and in four steroid-dependent; five patients had the same mutation (P20L). Among these, two had steroid/cyclosporin resistance, two had steroid dependence, and one responded to cyclosporin. The common variant R229Q of podocin, recently associated with late-onset focal segmental glomerulosclerosis, had an overall allelic frequency of 4.2% versus 2.5% in controls. To further define the implication of R229Q, a familial case was characterized with two nephrotic siblings presenting the association of the R229Q with A297V mutation that were inherited from healthy mother and father, respectively. Immunohistochemistry with anti-podocin antibodies revealed markedly decreased expression of the protein in their kidneys. All carriers of heterozygous coding podocin mutation or R229Q were screened for nephrin mutation that was found in heterozygosity associated with R229Q in one patient. Finally, podocin loss of heterozygosity was excluded in one heterozygous child by characterizing cDNA from dissected glomeruli. These data outline the clinical features of sporadic nephrotic syndrome due to podocin mutations (homozygous and heterozygous) in a representative population with broad phenotype, including patients with good response to drugs. The pathogenetic implication of single podocin defects per se in proteinuria must be further investigated in view of the possibility that detection of a second mutation could have been missed. A suggested alternative is the involvement of other gene(s) or factor(s).


American Journal of Human Genetics | 2012

Copy-Number Disorders Are a Common Cause of Congenital Kidney Malformations

Simone Sanna-Cherchi; Krzysztof Kiryluk; Katelyn E. Burgess; Monica Bodria; Matthew Sampson; Dexter Hadley; Shannon N. Nees; Miguel Verbitsky; Brittany J. Perry; Roel Sterken; Vladimir J. Lozanovski; Anna Materna-Kiryluk; Cristina Barlassina; Akshata Kini; Valentina Corbani; Alba Carrea; Danio Somenzi; Corrado Murtas; Nadica Ristoska-Bojkovska; Claudia Izzi; Beatrice Bianco; Marcin Zaniew; Hana Flögelová; Patricia L. Weng; Nilgun Kacak; Stefania Giberti; Maddalena Gigante; Adela Arapović; Kristina Drnasin; Gianluca Caridi

We examined the burden of large, rare, copy-number variants (CNVs) in 192 individuals with renal hypodysplasia (RHD) and replicated findings in 330 RHD cases from two independent cohorts. CNV distribution was significantly skewed toward larger gene-disrupting events in RHD cases compared to 4,733 ethnicity-matched controls (p = 4.8 × 10(-11)). This excess was attributable to known and novel (i.e., not present in any database or in the literature) genomic disorders. All together, 55/522 (10.5%) RHD cases harbored 34 distinct known genomic disorders, which were detected in only 0.2% of 13,839 population controls (p = 1.2 × 10(-58)). Another 32 (6.1%) RHD cases harbored large gene-disrupting CNVs that were absent from or extremely rare in the 13,839 population controls, identifying 38 potential novel or rare genomic disorders for this trait. Deletions at the HNF1B locus and the DiGeorge/velocardiofacial locus were most frequent. However, the majority of disorders were detected in a single individual. Genomic disorders were detected in 22.5% of individuals with multiple malformations and 14.5% of individuals with isolated urinary-tract defects; 14 individuals harbored two or more diagnostic or rare CNVs. Strikingly, the majority of the known CNV disorders detected in the RHD cohort have previous associations with developmental delay or neuropsychiatric diseases. Up to 16.6% of individuals with kidney malformations had a molecular diagnosis attributable to a copy-number disorder, suggesting kidney malformations as a sentinel manifestation of pathogenic genomic imbalances. A search for pathogenic CNVs should be considered in this population for the diagnosis of their specific genomic disorders and for the evaluation of the potential for developmental delay.


The New England Journal of Medicine | 2013

Mutations in DSTYK and Dominant Urinary Tract Malformations

Simone Sanna-Cherchi; R.V. Sampogna; Natalia Papeta; Katelyn E. Burgess; Shannon N. Nees; Brittany J. Perry; Murim Choi; Monica Bodria; Yuanli Liu; Patricia L. Weng; Vladimir J. Lozanovski; Miguel Verbitsky; F. Lugani; Roel Sterken; Neal Paragas; Gianluca Caridi; Alba Carrea; M. Dagnino; Anna Materna-Kiryluk; G. Santamaria; C. Murtas; Nadica Ristoska-Bojkovska; Claudia Izzi; Nilgun Kacak; Beatrice Bianco; S. Giberti; Maddalena Gigante; G. Piaggio; Loreto Gesualdo; D. Kosuljandic Vukic

BACKGROUND Congenital abnormalities of the kidney and the urinary tract are the most common cause of pediatric kidney failure. These disorders are highly heterogeneous, and the etiologic factors are poorly understood. METHODS We performed genomewide linkage analysis and whole-exome sequencing in a family with an autosomal dominant form of congenital abnormalities of the kidney or urinary tract (seven affected family members). We also performed a sequence analysis in 311 unrelated patients, as well as histologic and functional studies. RESULTS Linkage analysis identified five regions of the genome that were shared among all affected family members. Exome sequencing identified a single, rare, deleterious variant within these linkage intervals, a heterozygous splice-site mutation in the dual serine-threonine and tyrosine protein kinase gene (DSTYK). This variant, which resulted in aberrant splicing of messenger RNA, was present in all affected family members. Additional, independent DSTYK mutations, including nonsense and splice-site mutations, were detected in 7 of 311 unrelated patients. DSTYK is highly expressed in the maturing epithelia of all major organs, localizing to cell membranes. Knockdown in zebrafish resulted in developmental defects in multiple organs, which suggested loss of fibroblast growth factor (FGF) signaling. Consistent with this finding is the observation that DSTYK colocalizes with FGF receptors in the ureteric bud and metanephric mesenchyme. DSTYK knockdown in human embryonic kidney cells inhibited FGF-stimulated phosphorylation of extracellular-signal-regulated kinase (ERK), the principal signal downstream of receptor tyrosine kinases. CONCLUSIONS We detected independent DSTYK mutations in 2.3% of patients with congenital abnormalities of the kidney or urinary tract, a finding that suggests that DSTYK is a major determinant of human urinary tract development, downstream of FGF signaling. (Funded by the National Institutes of Health and others.).


Kidney International | 2011

Exome sequencing identified MYO1E and NEIL1 as candidate genes for human autosomal recessive steroid-resistant nephrotic syndrome

Simone Sanna-Cherchi; Katelyn E. Burgess; Shannon N. Nees; Gianluca Caridi; Patricia L. Weng; Monica Dagnino; Monica Bodria; Alba Carrea; Maddalena Allegretta; Hyunjae R. Kim; Brittany J. Perry; Maddalena Gigante; Lorraine N. Clark; Sergey Kisselev; Daniele Cusi; Loreto Gesualdo; Landino Allegri; Francesco Scolari; Lawrence Shapiro; Carmine Pecoraro; Teresa Palomero; Gian Marco Ghiggeri; Ali G. Gharavi

To identify gene loci associated with steroid-resistant nephrotic syndrome (SRNS), we utilized homozygosity mapping and exome sequencing in a consanguineous pedigree with three affected siblings. High-density genotyping identified three segments of homozygosity spanning 33.6 Mb on chromosomes 5, 10, and 15 containing 296 candidate genes. Exome sequencing identified two homozygous missense variants within the chromosome 15 segment; an A159P substitution in myosin 1E (MYO1E), encoding a podocyte cytoskeletal protein; and an E181K substitution in nei endonuclease VIII-like 1 (NEIL1), encoding a base-excision DNA repair enzyme. Both variants disrupt highly conserved protein sequences and were absent in public databases, 247 healthy controls, and 286 patients with nephrotic syndrome. The MYO1E A159P variant is noteworthy, as it is expected to impair ligand binding and actin interaction in the MYO1E motor domain. The predicted loss of function is consistent with the previous demonstration that Myo1e inactivation produces nephrotic syndrome in mice. Screening 71 additional patients with SRNS, however, did not identify independent NEIL1 or MYO1E mutations, suggesting larger sequencing efforts are needed to uncover which mutation is responsible for the phenotype. Our findings demonstrate the utility of exome sequencing for rapidly identifying candidate genes for human SRNS.


Journal of The American Society of Nephrology | 2014

Phenotypic Expansion of DGKE-Associated Diseases

Rik Westland; Monica Bodria; Alba Carrea; Sneh Lata; Francesco Scolari; Véronique Frémeaux-Bacchi; Vivette D. D’Agati; Richard P. Lifton; Ali G. Gharavi; Gian Marco Ghiggeri; Simone Sanna-Cherchi

Atypical hemolytic uremic syndrome (aHUS) is usually characterized by uncontrolled complement activation. The recent discovery of loss-of-function mutations in DGKE in patients with aHUS and normal complement levels challenged this observation. DGKE, encoding diacylglycerol kinase-ε, has not been implicated in the complement cascade but hypothetically leads to a prothrombotic state. The discovery of this novel mechanism has potential implications for the treatment of infants with aHUS, who are increasingly treated with complement blocking agents. In this study, we used homozygosity mapping and whole-exome sequencing to identify a novel truncating mutation in DGKE (p.K101X) in a consanguineous family with patients affected by thrombotic microangiopathy characterized by significant serum complement activation and consumption of the complement fraction C3. Aggressive plasma infusion therapy controlled systemic symptoms and prevented renal failure, suggesting that this treatment can significantly affect the natural history of this aggressive disease. Our study expands the clinical phenotypes associated with mutations in DGKE and challenges the benefits of complement blockade treatment in such patients. Mechanistic studies of DGKE and aHUS are, therefore, essential to the design of appropriate therapeutic strategies in patients with DGKE mutations.


American Journal of Human Genetics | 2007

Localization of a Gene for Nonsyndromic Renal Hypodysplasia to Chromosome 1p32-33

Simone Sanna-Cherchi; Gianluca Caridi; Patricia L. Weng; Monica Dagnino; Marco Seri; Anita Konka; Danio Somenzi; Alba Carrea; Claudia Izzi; Domenica Casu; Landino Allegri; Kai M. Schmidt-Ott; Jonathan Barasch; Francesco Scolari; Roberto Ravazzolo; Gian Marco Ghiggeri; Ali G. Gharavi

Nonsyndromic defects in the urinary tract are the most common cause of end-stage renal failure in children and account for a significant proportion of adult nephropathy. The genetic basis of these disorders is not fully understood. We studied seven multiplex kindreds ascertained via an index case with a nonsyndromic solitary kidney or renal hypodysplasia. Systematic ultrasonographic screening revealed that many family members harbor malformations, such as solitary kidneys, hypodysplasia, or ureteric abnormalities (in a total of 29 affected individuals). A genomewide scan identified significant linkage to a 6.9-Mb segment on chromosome 1p32-33 under an autosomal dominant model with reduced penetrance (peak LOD score 3.5 at D1S2652 in the largest kindred). Altogether, three of the seven families showed positive LOD scores at this interval, demonstrating heterogeneity of the trait (peak HLOD 3.9, with 45% of families linked). The chromosome 1p32-33 interval contains 52 transcription units, and at least 23 of these are expressed at stage E12.5 in the murine ureteric bud and/or metanephric mesenchyme. These data show that autosomal dominant nonsyndromic renal hypodysplasia and associated urinary tract malformations are genetically heterogeneous and identify a locus for this common cause of human kidney failure.


Pediatric Nephrology | 1991

Long-term effect of amino-acid dialysis solution in children on continuous ambulatory peritoneal dialysis

Alberto Canepa; Francesco Perfumo; Alba Carrea; Francesca Giallongo; Enrico Verrina; Alberto Cantaluppi; Rosanna Gusmano

The study involved eight metabolically stable children, with chronic renal failure on continuous ambulatory peritoneal dialysis (CAPD) whom we followed for 12–18 months. For the first 6 months CAPD was performed with dextrose; for the subsequent 6–12 months the morning exchange was substituted with a 1% amino-acid (AA) solution. The following parameters did not change during the study: serum creatinine, uric acid, inorganic phosphate, serum bicarbonate, potassium, cholesterol, triglycerides, total protein, albumin and transferrin. The only parameter that changed was blood urea nitrogen, which increased moderately. The anthropometric parameters did not show significant variation before and after AA dialysis. The plasma AA profile, which under basal conditions showed lower levels of several essential AAs, improved during the treatment period, with a partial correction of the imbalance. It is possible that this correction of plasma AAs may positively influence the metabolism of some organs such as the brain, muscle and those of the hepatosplanchnic region. The intracellular pool of free AAs, measured in polymorphonuclear leucocytes, was severely altered before the treatment and after 6 and 12 months showed only minor variations. It is possible that some modifications in the proportion of the different AAs in the dialysis solution or an improvement in the concentration or in the number of exchanges per day are necessary in order to change the nutritional status and to modify the intracellular AA pool.


The New England Journal of Medicine | 2017

Genetic Drivers of Kidney Defects in the DiGeorge Syndrome

E. Lopez-Rivera; Yangfan P. Liu; Miguel Verbitsky; Blair R. Anderson; V. P. Capone; Edgar A. Otto; Z. Yan; Adele Mitrotti; Jeremiah Martino; N. J. Steers; David A. Fasel; Katarina Vukojevic; R. Deng; Silvia E. Racedo; Q. Liu; M. Werth; R. Westland; A. Vivante; G. S. Makar; M. Bodria; Matthew G. Sampson; Christopher E. Gillies; Virginia Vega-Warner; Maiorana M; D. S. Petrey; B. Honig; V. J. Lozanovski; Rémi Salomon; L. Heidet; W. Carpentier

Background The DiGeorge syndrome, the most common of the microdeletion syndromes, affects multiple organs, including the heart, the nervous system, and the kidney. It is caused by deletions on chromosome 22q11.2; the genetic driver of the kidney defects is unknown. Methods We conducted a genomewide search for structural variants in two cohorts: 2080 patients with congenital kidney and urinary tract anomalies and 22,094 controls. We performed exome and targeted resequencing in samples obtained from 586 additional patients with congenital kidney anomalies. We also carried out functional studies using zebrafish and mice. Results We identified heterozygous deletions of 22q11.2 in 1.1% of the patients with congenital kidney anomalies and in 0.01% of population controls (odds ratio, 81.5; P=4.5×10‐14). We localized the main drivers of renal disease in the DiGeorge syndrome to a 370‐kb region containing nine genes. In zebrafish embryos, an induced loss of function in snap29, aifm3, and crkl resulted in renal defects; the loss of crkl alone was sufficient to induce defects. Five of 586 patients with congenital urinary anomalies had newly identified, heterozygous protein‐altering variants, including a premature termination codon, in CRKL. The inactivation of Crkl in the mouse model induced developmental defects similar to those observed in patients with congenital urinary anomalies. Conclusions We identified a recurrent 370‐kb deletion at the 22q11.2 locus as a driver of kidney defects in the DiGeorge syndrome and in sporadic congenital kidney and urinary tract anomalies. Of the nine genes at this locus, SNAP29, AIFM3, and CRKL appear to be critical to the phenotype, with haploinsufficiency of CRKL emerging as the main genetic driver. (Funded by the National Institutes of Health and others.)


Blood Purification | 2008

Hyperinsulinemia and Insulin Resistance, Early Cardiovascular Risk Factors in Children with Chronic Kidney Disease

Ylva Tranæus Lindblad; Jonas Axelsson; Peter Bárány; Gianni Celsi; Bengt Lindholm; Abdul Rashid Qureshi; Alba Carrea; Alberto Canepa

Background/Aims: Pediatric chronic kidney disease (CKD) is associated with increased risk of cardiovascular disease. Still, hyperinsulinemia and insulin resistance, common cardiovascular risk factors, are not extensively investigated in children with CKD. We hypothesize that insulin abnormalities are present also in pediatric mild to moderate CKD, and associated with inflammation and malnutrition. Methods: We enrolled 26 children with CKD, and 34 healthy controls for analyses of blood samples and body composition. Insulin resistance was assessed using the homeostasis model assessment for insulin resistance (HOMA-IR). Results: The patients had higher insulin levels and HOMA-IR compared to the controls (p < 0.01 and p < 0.005), and they correlated inversely with estimated glomerular filtration rate (rho = –0.52, p < 0.01; rho = –0.37, p = 0.08). No association was found with inflammation or malnutrition. Conclusion: High insulin levels and HOMA-IR appear to be common in pediatric CKD patients, already in mild to moderate renal failure. We hypothesize that hyperinsulinemia and insulin resistance alone might be important risk factors for cardiovascular disease in children with CKD.


American Journal of Transplantation | 2017

Kidney Intragraft Homing of De Novo Donor-Specific HLA Antibodies Is an Essential Step of Antibody-Mediated Damage but Not Per Se Predictive of Graft Loss

Arcangelo Nocera; Augusto Tagliamacco; Michela Cioni; Annalisa Innocente; I. Fontana; Giancarlo Barbano; Alba Carrea; Miriam Ramondetta; Angela Sementa; Sabrina Basso; Giuseppe Quartuccio; Catherine Klersy; M Bertocchi; Enrico Verrina; Giacomo Garibotto; Gian Marco Ghiggeri; Massimo Cardillo; Patrizia Comoli; Fabrizio Ginevri

Donor‐specific HLA antibody (DSA)‐mediated graft injury is the major cause of kidney loss. Among DSA characteristics, graft homing has been suggested as an indicator of severe tissue damage. We analyzed the role of de novo DSA (dnDSA) graft homing on kidney transplantation outcome. Graft biopsy specimens and parallel sera from 48 nonsensitized pediatric kidney recipients were analyzed. Serum samples and eluates from graft biopsy specimens were tested for the presence of dnDSAs with flow bead technology. Intragraft dnDSAs (gDSAs) were never detected in the absence of serum dnDSAs (sDSAs), whereas in the presence of sDSAs, gDSAs were demonstrated in 72% of biopsy specimens. A significantly higher homing capability was expressed by class II sDSAs endowed with high mean fluorescence intensity and C3d‐ and/or C1q‐fixing properties. In patients with available sequential biopsy specimens, we detected gDSAs before the appearance of antibody‐mediated rejection. In sDSA‐positive patients, gDSA positivity did not allow stratification for antibody‐mediated graft lesions and graft loss. However, a consistent detection of skewed unique DSA specificities was observed over time within the graft, likely responsible for the damage. Our results indicate that gDSAs could represent an instrumental tool to identify, among sDSAs, clinically relevant antibody specificities requiring monitoring and possibly guiding patient management.

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Alberto Canepa

Istituto Giannina Gaslini

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Gianluca Caridi

Istituto Giannina Gaslini

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Rosanna Gusmano

Istituto Giannina Gaslini

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Enrico Verrina

Istituto Giannina Gaslini

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Monica Dagnino

Istituto Giannina Gaslini

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Stefania Menoni

Istituto Giannina Gaslini

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