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Dive into the research topics where Vincent Funari is active.

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Featured researches published by Vincent Funari.


Science | 2012

Interactions between commensal fungi and the C-type lectin receptor Dectin-1 influence colitis

Iliyan D. Iliev; Vincent Funari; Kent D. Taylor; Quoclinh Nguyen; Christopher N. Reyes; Samuel P. Strom; Jordan Brown; Courtney A. Becker; Phillip Fleshner; Marla Dubinsky; Jerome I. Rotter; Hanlin L. Wang; Dermot McGovern; Gordon D. Brown; David M. Underhill

The Mycobiome In the past few years, much attention has been given to the trillions of bacterial inhabitants in our guts and the myriad of ways in which they influence our overall health. But what about fungi? Iliev et al. (p. 1314) now report that mice and humans, along with several other mammals, contain a resident intestinal population of fungi. Deletion of Dectin-1, which acts as a major innate immune sensor for fungi, led to enhanced susceptibility and worse pathology in a chemically induced model of colitis in mice. A polymorphism in the gene that encodes Dectin-1 has been observed in patients with ulcerative colitis, which hints that, besides the traditional bacterial microbiome, alterations in the “mycobiome” may also play a role in health and disease. Mammals contain resident fungal intestinal populations that influence disease susceptibility. The intestinal microflora, typically equated with bacteria, influences diseases such as obesity and inflammatory bowel disease. Here, we show that the mammalian gut contains a rich fungal community that interacts with the immune system through the innate immune receptor Dectin-1. Mice lacking Dectin-1 exhibited increased susceptibility to chemically induced colitis, which was the result of altered responses to indigenous fungi. In humans, we identified a polymorphism in the gene for Dectin-1 (CLEC7A) that is strongly linked to a severe form of ulcerative colitis. Together, our findings reveal a eukaryotic fungal community in the gut (the “mycobiome”) that coexists with bacteria and substantially expands the repertoire of organisms interacting with the intestinal immune system to influence health and disease.


Nature Genetics | 2012

De novo somatic mutations in components of the PI3K-AKT3-mTOR pathway cause hemimegalencephaly

Jeong Ho Lee; My N. Huynh; Jennifer L. Silhavy; Sangwoo Kim; Tracy Dixon-Salazar; Andrew Heiberg; Eric Scott; Vineet Bafna; Kiley J. Hill; Adrienne Collazo; Vincent Funari; Carsten Russ; Stacey Gabriel; Gary W. Mathern; Joseph G. Gleeson

De novo somatic mutations in focal areas are well documented in diseases such as neoplasia but are rarely reported in malformation of the developing brain. Hemimegalencephaly (HME) is characterized by overgrowth of either one of the two cerebral hemispheres. The molecular etiology of HME remains a mystery. The intractable epilepsy that is associated with HME can be relieved by the surgical treatment hemispherectomy, allowing sampling of diseased tissue. Exome sequencing and mass spectrometry analysis in paired brain-blood samples from individuals with HME (n = 20 cases) identified de novo somatic mutations in 30% of affected individuals in the PIK3CA, AKT3 and MTOR genes. A recurrent PIK3CA c.1633G>A mutation was found in four separate cases. Identified mutations were present in 8–40% of sequenced alleles in various brain regions and were associated with increased neuronal S6 protein phosphorylation in the brains of affected individuals, indicating aberrant activation of mammalian target of rapamycin (mTOR) signaling. Thus HME is probably a genetically mosaic disease caused by gain of function in phosphatidylinositol 3-kinase (PI3K)-AKT3-mTOR signaling.


Nature Genetics | 2008

Gain-of-function mutations in TRPV4 cause autosomal dominant brachyolmia

Matthew J. Rock; Jean Prenen; Vincent Funari; Tara L. Funari; Barry Merriman; Stanley F. Nelson; Ralph S. Lachman; William R. Wilcox; Soraya Reyno; Roberto Quadrelli; Alicia Vaglio; Grzegorz Owsianik; Annelies Janssens; Thomas Voets; Shiro Ikegawa; Toshiro Nagai; David L. Rimoin; Bernd Nilius; Daniel H. Cohn

The brachyolmias constitute a clinically and genetically heterogeneous group of skeletal dysplasias characterized by a short trunk, scoliosis and mild short stature. Here, we identify a locus for an autosomal dominant form of brachyolmia on chromosome 12q24.1–12q24.2. Among the genes in the genetic interval, we selected TRPV4, which encodes a calcium permeable cation channel of the transient receptor potential (TRP) vanilloid family, as a candidate gene because of its cartilage-selective gene expression pattern. In two families with the phenotype, we identified point mutations in TRPV4 that encoded R616Q and V620I substitutions, respectively. Patch clamp studies of transfected HEK cells showed that both mutations resulted in a dramatic gain of function characterized by increased constitutive activity and elevated channel activation by either mechano-stimulation or agonist stimulation by arachidonic acid or the TRPV4-specific agonist 4α-phorbol 12,13-didecanoate (4αPDD). This study thus defines a previously unknown mechanism, activation of a calcium-permeable TRP ion channel, in skeletal dysplasia pathogenesis.


American Journal of Human Genetics | 2009

Ciliary Abnormalities Due to Defects in the Retrograde Transport Protein DYNC2H1 in Short-Rib Polydactyly Syndrome

Amy E. Merrill; Barry Merriman; Claire Farrington-Rock; Natalia Camacho; Eiman Sebald; Vincent Funari; Matthew J. Schibler; Marc H. Firestein; Zachary A. Cohn; Mary Ann Priore; Alicia Thompson; David L. Rimoin; Stanley F. Nelson; Daniel H. Cohn; Deborah Krakow

The short-rib polydactyly (SRP) syndromes are a heterogeneous group of perinatal lethal skeletal disorders with polydactyly and multisystem organ abnormalities. Homozygosity by descent mapping in a consanguineous SRP family identified a genomic region that contained DYNC2H1, a cytoplasmic dynein involved in retrograde transport in the cilium. Affected individuals in the family were homozygous for an exon 12 missense mutation that predicted the amino acid substitution R587C. Compound heterozygosity for one missense and one null mutation was identified in two additional nonconsanguineous SRP families. Cultured chondrocytes from affected individuals showed morphologically abnormal, shortened cilia. In addition, the chondrocytes showed abnormal cytoskeletal microtubule architecture, implicating an altered microtubule network as part of the disease process. These findings establish SRP as a cilia disorder and demonstrate that DYNC2H1 is essential for skeletogenesis and growth.


Fertility and Sterility | 1992

Elevated interleukin-6 levels in peritoneal fluid of patients with pelvic pathology * †

Richard P. Buyalos; Vincent Funari; Ricardo Azziz; Joanna M. Watson; Otoniel Martínez-Maza

OBJECTIVE To determine if interleukin 6 (IL-6) is a normal constituent of peritoneal fluid (PF), and if various types of pelvic pathology influence its presence within the PF microenvironment. STUDY DESIGN Peritoneal fluid from 73 women obtained at the time of laparoscopy was examined for the presence of IL-6 using an IL-6 specific sandwich enzyme-linked immunosorbent assay. Thirty-nine patients had pelvic endometriosis, 17 had nonendometriotic pelvic adhesive disease, and 17 subjects undergoing tubal sterilization without evidence of pelvic pathology served as controls. RESULTS Immunoreactive IL-6 was observed in the PF of all 73 subjects (range 0.26 to 11.16 ng/mL). The mean concentration of IL-6 was higher in women with nonendometriotic pelvic adhesions as compared with control subjects (1.28 +/- 0.16 versus 0.80 +/- 0.06 ng/mL, P less than 0.03). There was no difference in the mean peritoneal concentrations of IL-6 between women with endometriosis (1.16 +/- 0.28 ng/mL) and controls, P = 0.38. Twenty-seven of 73 patients (37%) demonstrated elevated levels (greater than 1.0 ng/mL) of IL-6. Patients with pelvic adhesions were significantly more likely to have elevated concentrations of IL-6 than controls (10/17 [59%] versus 3/17 [18%], P less than 0.02). Alternatively, the percentage of patients with elevated IL-6 concentrations did not differ between patients with endometriosis or controls (14/39 [36%] versus 3/17 [18%], P greater than 0.10). CONCLUSIONS These findings demonstrate that IL-6 is a normal constituent of PF and that elevated levels are found in many patients with pelvic adhesions.


The New England Journal of Medicine | 2010

Lethal Skeletal Dysplasia in Mice and Humans Lacking the Golgin GMAP-210

Patrick Smits; Andrew D. Bolton; Vincent Funari; Minh Hong; Eric D. Boyden; Lei Lu; Danielle K. Manning; Noelle D. Dwyer; Jennifer L. Moran; Mary Prysak; Barry Merriman; Stanley F. Nelson; Luisa Bonafé; Andrea Superti-Furga; Shiro Ikegawa; Deborah Krakow; Daniel H. Cohn; Tom Kirchhausen; Matthew L. Warman; David R. Beier

BACKGROUND Establishing the genetic basis of phenotypes such as skeletal dysplasia in model organisms can provide insights into biologic processes and their role in human disease. METHODS We screened mutagenized mice and observed a neonatal lethal skeletal dysplasia with an autosomal recessive pattern of inheritance. Through genetic mapping and positional cloning, we identified the causative mutation. RESULTS Affected mice had a nonsense mutation in the thyroid hormone receptor interactor 11 gene (Trip11), which encodes the Golgi microtubule-associated protein 210 (GMAP-210); the affected mice lacked this protein. Golgi architecture was disturbed in multiple tissues, including cartilage. Skeletal development was severely impaired, with chondrocytes showing swelling and stress in the endoplasmic reticulum, abnormal cellular differentiation, and increased cell death. Golgi-mediated glycosylation events were altered in fibroblasts and chondrocytes lacking GMAP-210, and these chondrocytes had intracellular accumulation of perlecan, an extracellular matrix protein, but not of type II collagen or aggrecan, two other extracellular matrix proteins. The similarities between the skeletal and cellular phenotypes in these mice and those in patients with achondrogenesis type 1A, a neonatal lethal form of skeletal dysplasia in humans, suggested that achondrogenesis type 1A may be caused by GMAP-210 deficiency. Sequence analysis revealed loss-of-function mutations in the 10 unrelated patients with achondrogenesis type 1A whom we studied. CONCLUSIONS GMAP-210 is required for the efficient glycosylation and cellular transport of multiple proteins. The identification of a mutation affecting GMAP-210 in mice, and then in humans, as the cause of a lethal skeletal dysplasia underscores the value of screening for abnormal phenotypes in model organisms and identifying the causative mutations.


Nature Immunology | 2015

The development of innate lymphoid cells requires TOX-dependent generation of a common innate lymphoid cell progenitor

Corey R. Seehus; Parinaz Aliahmad; Brian de la Torre; Iliyan D. Iliev; Lindsay Spurka; Vincent Funari; Jonathan Kaye

Diverse innate lymphoid cell (ILC) subtypes have been defined on the basis of effector function and transcription factor expression. ILCs derive from common lymphoid progenitors, although the transcriptional pathways that lead to ILC-lineage specification remain poorly characterized. Here we found that the transcriptional regulator TOX was required for the in vivo differentiation of common lymphoid progenitors into ILC lineage–restricted cells. In vitro modeling demonstrated that TOX deficiency resulted in early defects in the survival or proliferation of progenitor cells, as well as ILC differentiation at a later stage. In addition, comparative transcriptome analysis of bone marrow progenitors revealed that TOX-deficient cells failed to upregulate many genes of the ILC program, including genes that are targets of Notch, which indicated that TOX is a key determinant of early specification to the ILC lineage.Diverse innate lymphoid cell (ILC) subtypes have been defined, based on effector function and transcription factor expression. ILCs derive from common lymphoid progenitors, although the transcriptional pathways leading to ILC lineage specification remain poorly characterized. Here we demonstrate that transcriptional regulator TOX is required for the in vivo differentiation of common lymphoid progenitors to ILC lineage-restricted cells. In vitro modeling demonstrates that TOX deficiency results in early defects in progenitor cell survival or expansion as well as later stage ILC differentiation. In addition, comparative transcriptome analysis of bone marrow progenitors reveals that TOX-deficient cells fail to upregulate many aspects of the ILC gene program, including Notch gene targets, implicating TOX as a key determinant of early ILC lineage specification.


American Journal of Human Genetics | 2009

A Recessive Skeletal Dysplasia, SEMD Aggrecan Type, Results from a Missense Mutation Affecting the C-Type Lectin Domain of Aggrecan

Stuart W. Tompson; Barry Merriman; Vincent Funari; Maryline Fresquet; Ralph S. Lachman; David L. Rimoin; Stanley F. Nelson; Michael D. Briggs; Daniel H. Cohn; Deborah Krakow

Analysis of a nuclear family with three affected offspring identified an autosomal-recessive form of spondyloepimetaphyseal dysplasia characterized by severe short stature and a unique constellation of radiographic findings. Homozygosity for a haplotype that was identical by descent between two of the affected individuals identified a locus for the disease gene within a 17.4 Mb interval on chromosome 15, a region containing 296 genes. These genes were assessed and ranked by cartilage selectivity with whole-genome microarray data, revealing only two genes, encoding aggrecan and chondroitin sulfate proteoglycan 4, that were selectively expressed in cartilage. Sequence analysis of aggrecan complementary DNA from an affected individual revealed homozygosity for a missense mutation (c.6799G --> A) that predicts a p.D2267N amino acid substitution in the C-type lectin domain within the G3 domain of aggrecan. The D2267 residue is predicted to coordinate binding of a calcium ion, which influences the conformational binding loops of the C-type lectin domain that mediate interactions with tenascins and other extracellular-matrix proteins. Expression of the normal and mutant G3 domains in mammalian cells showed that the mutation created a functional N-glycosylation site but did not adversely affect protein trafficking and secretion. Surface-plasmon-resonance studies showed that the mutation influenced the binding and kinetics of the interactions between the aggrecan G3 domain and tenascin-C. These findings identify an autosomal-recessive skeletal dysplasia and a significant role for the aggrecan C-type lectin domain in regulating endochondral ossification and, thereby, height.


Stem Cells Translational Medicine | 2014

Differentiation of Human Limbal-Derived Induced Pluripotent Stem Cells Into Limbal-Like Epithelium

Dhruv Sareen; Mehrnoosh Saghizadeh; Loren Ornelas; Michael A. Winkler; Kavita Narwani; Anais Sahabian; Vincent Funari; Jie Tang; Lindsay Spurka; Vasu Punj; Ezra Maguen; Yaron S. Rabinowitz; Clive N. Svendsen; Alexander V. Ljubimov

Limbal epithelial stem cell (LESC) deficiency (LSCD) leads to corneal abnormalities resulting in compromised vision and blindness. LSCD can be potentially treated by transplantation of appropriate cells, which should be easily expandable and bankable. Induced pluripotent stem cells (iPSCs) are a promising source of transplantable LESCs. The purpose of this study was to generate human iPSCs and direct them to limbal differentiation by maintaining them on natural substrata mimicking the native LESC niche, including feederless denuded human amniotic membrane (HAM) and de‐epithelialized corneas. These iPSCs were generated with nonintegrating vectors from human primary limbal epithelial cells. This choice of parent cells was supposed to enhance limbal cell differentiation from iPSCs by partial retention of parental epigenetic signatures in iPSCs. When the gene methylation patterns were compared in iPSCs to parental LESCs using Illumina global methylation arrays, limbal‐derived iPSCs had fewer unique methylation changes than fibroblast‐derived iPSCs, suggesting retention of epigenetic memory during reprogramming. Limbal iPSCs cultured for 2 weeks on HAM developed markedly higher expression of putative LESC markers ABCG2, ΔNp63α, keratins 14, 15, and 17, N‐cadherin, and TrkA than did fibroblast iPSCs. On HAM culture, the methylation profiles of select limbal iPSC genes (including NTRK1, coding for TrkA protein) became closer to the parental cells, but fibroblast iPSCs remained closer to parental fibroblasts. On denuded air‐lifted corneas, limbal iPSCs even upregulated differentiated corneal keratins 3 and 12. These data emphasize the importance of the natural niche and limbal tissue of origin in generating iPSCs as a LESC source with translational potential for LSCD treatment.


PLOS ONE | 2013

Differentially Expressed Wound Healing-Related microRNAs in the Human Diabetic Cornea

Vincent Funari; Michael A. Winkler; Jordan Brown; Slobodan D. Dimitrijevich; Alexander V. Ljubimov; Mehrnoosh Saghizadeh

MicroRNAs are powerful gene expression regulators, but their corneal repertoire and potential changes in corneal diseases remain unknown. Our purpose was to identify miRNAs altered in the human diabetic cornea by microarray analysis, and to examine their effects on wound healing in cultured telomerase-immortalized human corneal epithelial cells (HCEC) in vitro. Total RNA was extracted from age-matched human autopsy normal (n=6) and diabetic (n=6) central corneas, Flash Tag end-labeled, and hybridized to Affymetrix® GeneChip® miRNA Arrays. Select miRNAs associated with diabetic cornea were validated by quantitative RT-PCR (Q-PCR) and by in situ hybridization (ISH) in independent samples. HCEC were transfected with human pre-miRTMmiRNA precursors (h-miR) or their inhibitors (antagomirs) using Lipofectamine 2000. Confluent transfected cultures were scratch-wounded with P200 pipette tip. Wound closure was monitored by digital photography. Expression of signaling proteins was detected by immunostaining and Western blot. Using microarrays, 29 miRNAs were identified as differentially expressed in diabetic samples. Two miRNA candidates showing the highest fold increased in expression in the diabetic cornea were confirmed by Q-PCR and further characterized. HCEC transfection with h-miR-146a or h-miR-424 significantly retarded wound closure, but their respective antagomirs significantly enhanced wound healing vs. controls. Cells treated with h-miR-146a or h-miR-424 had decreased p-p38 and p-EGFR staining, but these increased over control levels close to the wound edge upon antagomir treatment. In conclusion, several miRNAs with increased expression in human diabetic central corneas were found. Two such miRNAs inhibited cultured corneal epithelial cell wound healing. Dysregulation of miRNA expression in human diabetic cornea may be an important mediator of abnormal wound healing.

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Jie Tang

Cedars-Sinai Medical Center

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Daniel H. Cohn

University of California

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Jordan Brown

Cedars-Sinai Medical Center

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Lindsay Spurka

Cedars-Sinai Medical Center

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Deborah Krakow

University of California

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Iliyan D. Iliev

Cedars-Sinai Medical Center

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Barry Merriman

University of California

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