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Dive into the research topics where Erica E. Davis is active.

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Featured researches published by Erica E. Davis.


Cell | 2009

The Vertebrate Primary Cilium in Development, Homeostasis, and Disease

Jantje M. Gerdes; Erica E. Davis; Nicholas Katsanis

Cilia are complex structures that have garnered interest because of their roles in vertebrate development and their involvement in human genetic disorders. In contrast to multicellular invertebrates in which cilia are restricted to specific cell types, these organelles are found almost ubiquitously in vertebrate cells, where they serve a diverse set of signaling functions. Here, we highlight properties of vertebrate cilia, with particular emphasis on their relationship with other subcellular structures, and explore the physiological consequences of ciliary dysfunction.


Nature Genetics | 2008

Hypomorphic mutations in syndromic encephalocele genes are associated with Bardet-Biedl syndrome

Carmen C. Leitch; Norann A. Zaghloul; Erica E. Davis; Corinne Stoetzel; Anna Diaz-Font; Suzanne Rix; Majid Alfadhel; Richard Alan Lewis; Wafaa Eyaid; Eyal Banin; Hélène Dollfus; Philip L. Beales; Jose L. Badano; Nicholas Katsanis

Meckel-Gruber syndrome (MKS) is a genetically heterogeneous, neonatally lethal malformation and the most common form of syndromic neural tube defect (NTD). To date, several MKS-associated genes have been identified whose protein products affect ciliary function. Here we show that mutations in MKS1, MKS3 and CEP290 (also known as NPHP6) either can cause Bardet-Biedl syndrome (BBS) or may have a potential epistatic effect on mutations in known BBS-associated loci. Five of six families with both MKS1 and BBS mutations manifested seizures, a feature that is not a typical component of either syndrome. Functional studies in zebrafish showed that mks1 is necessary for gastrulation movements and that it interacts genetically with known bbs genes. Similarly, we found two families with missense or splice mutations in MKS3, in one of which the affected individual also bears a homozygous nonsense mutation in CEP290 that is likely to truncate the C terminus of the protein. These data extend the genetic stratification of ciliopathies and suggest that BBS and MKS, although distinct clinically, are allelic forms of the same molecular spectrum.


Current Biology | 2005

RNAi-Mediated Allelic trans-Interaction at the Imprinted Rtl1/Peg11 Locus

Erica E. Davis; Florian Caiment; Xavier Tordoir; Jérôme Cavaillé; Anne C. Ferguson-Smith; Noelle E. Cockett; Michel Georges; Carole Charlier

The Dlk1-Gtl2 imprinted domain, encompassing the callipyge (CLPG) locus in sheep, has recently been shown to harbor a large number of maternally expressed miRNA genes [1, 2]. Two of these (mir127 and mir136) are processed from a transcript (antiPeg11) that is antisense to Rtl1/Peg11, a paternally expressed intronless gene with homology to the gag and pol polyproteins of Sushi-like retroelements [3]. We herein demonstrate that several additional miRNAs are processed from antiPeg11 and that these regulate Rtl1/Peg11 in trans by guiding RISC-mediated cleavage of its mRNA. This is the first demonstration of miRNA-mediated RNAi involving imprinted genes in mammals.


Nature Genetics | 2006

The ciliary proteome database: an integrated community resource for the genetic and functional dissection of cilia

Adrian Gherman; Erica E. Davis; Nicholas Katsanis

The ciliary proteome database: an integrated community resource for the genetic and functional dissection of cilia


Nature Genetics | 2011

TTC21B contributes both causal and modifying alleles across the ciliopathy spectrum

Erica E. Davis; Qi Zhang; Qin Liu; Bill H. Diplas; Lisa Davey; Jane Hartley; Corinne Stoetzel; Katarzyna Szymanska; Gokul Ramaswami; Clare V. Logan; Donna M. Muzny; Alice C. Young; David A. Wheeler; Pedro Cruz; Margaret Morgan; Lora Lewis; Praveen F. Cherukuri; Baishali Maskeri; Nancy F. Hansen; James C. Mullikin; Robert W. Blakesley; Gerard G. Bouffard; Gabor Gyapay; Susanne Rieger; Burkhard Tönshoff; Ilse Kern; Neveen A. Soliman; Thomas J. Neuhaus; Kathryn J. Swoboda; Hülya Kayserili

Ciliary dysfunction leads to a broad range of overlapping phenotypes, collectively termed ciliopathies. This grouping is underscored by genetic overlap, where causal genes can also contribute modifier alleles to clinically distinct disorders. Here we show that mutations in TTC21B, which encodes the retrograde intraflagellar transport protein IFT139, cause both isolated nephronophthisis and syndromic Jeune asphyxiating thoracic dystrophy. Moreover, although resequencing of TTC21B in a large, clinically diverse ciliopathy cohort and matched controls showed a similar frequency of rare changes, in vivo and in vitro evaluations showed a significant enrichment of pathogenic alleles in cases (P < 0.003), suggesting that TTC21B contributes pathogenic alleles to ∼5% of ciliopathy cases. Our data illustrate how genetic lesions can be both causally associated with diverse ciliopathies and interact in trans with other disease-causing genes and highlight how saturated resequencing followed by functional analysis of all variants informs the genetic architecture of inherited disorders.


Nature Genetics | 2009

A common allele in RPGRIP1L is a modifier of retinal degeneration in ciliopathies.

Hemant Khanna; Erica E. Davis; Carlos A. Murga-Zamalloa; Alejandro Estrada-Cuzcano; Irma Lopez; Anneke I. den Hollander; Marijke N Zonneveld; Mohammad Othman; Naushin Waseem; Christina Chakarova; Cecilia Maubaret; Anna Diaz-Font; Ian M. MacDonald; Donna M. Muzny; David A. Wheeler; Margaret Morgan; Lora Lewis; Clare V. Logan; Perciliz L. Tan; Michael Beer; Chris F. Inglehearn; Richard Alan Lewis; Samuel G. Jacobson; Carsten Bergmann; Philip L. Beales; Tania Attié-Bitach; Colin A. Johnson; Edgar A. Otto; Shomi S. Bhattacharya; Friedhelm Hildebrandt

Despite rapid advances in the identification of genes involved in disease, the predictive power of the genotype remains limited, in part owing to poorly understood effects of second-site modifiers. Here we demonstrate that a polymorphic coding variant of RPGRIP1L (retinitis pigmentosa GTPase regulator-interacting protein-1 like), a ciliary gene mutated in Meckel-Gruber (MKS) and Joubert (JBTS) syndromes, is associated with the development of retinal degeneration in individuals with ciliopathies caused by mutations in other genes. As part of our resequencing efforts of the ciliary proteome, we identified several putative loss-of-function RPGRIP1L mutations, including one common variant, A229T. Multiple genetic lines of evidence showed this allele to be associated with photoreceptor loss in ciliopathies. Moreover, we show that RPGRIP1L interacts biochemically with RPGR, loss of which causes retinal degeneration, and that the Thr229-encoded protein significantly compromises this interaction. Our data represent an example of modification of a discrete phenotype of syndromic disease and highlight the importance of a multifaceted approach for the discovery of modifier alleles of intermediate frequency and effect.


Nature Genetics | 2006

BBS10 encodes a vertebrate-specific chaperonin-like protein and is a major BBS locus

Corinne Stoetzel; Virginie Laurier; Erica E. Davis; Jean Muller; Suzanne Rix; Jose L. Badano; Carmen C. Leitch; Nabiha Salem; Eliane Chouery; Sandra Corbani; Nadine Jalk; Serge Vicaire; Pierre Sarda; Christian P. Hamel; Didier Lacombe; Muriel Holder; Sylvie Odent; Susan Holder; Alice S. Brooks; Nursel Elcioglu; Eduardo Silva; Béatrice Rossillion; Sabine Sigaudy; Thomy de Ravel; Richard Alan Lewis; Bruno Leheup; Alain Verloes; Patrizia Amati-Bonneau; André Mégarbané; Olivier Poch

Bardet-Biedl syndrome (BBS) is a genetically heterogeneous ciliopathy. Although nine BBS genes have been cloned, they explain only 40–50% of the total mutational load. Here we report a major new BBS locus, BBS10, that encodes a previously unknown, rapidly evolving vertebrate-specific chaperonin-like protein. We found BBS10 to be mutated in about 20% of an unselected cohort of families of various ethnic origins, including some families with mutations in other BBS genes, consistent with oligogenic inheritance. In zebrafish, mild suppression of bbs10 exacerbated the phenotypes of other bbs morphants.


American Journal of Human Genetics | 2007

Identification of a Novel BBS Gene (BBS12) Highlights the Major Role of a Vertebrate-Specific Branch of Chaperonin-Related Proteins in Bardet-Biedl Syndrome

Corinne Stoetzel; Jean Muller; Virginie Laurier; Erica E. Davis; Norann A. Zaghloul; Serge Vicaire; Cécile Jacquelin; Frédéric Plewniak; Carmen C. Leitch; Pierre Sarda; Christian P. Hamel; Thomy de Ravel; Richard Alan Lewis; Evelyne Friederich; Christelle Thibault; Jean-Marc Danse; Alain Verloes; Dominique Bonneau; Nicholas Katsanis; Olivier Poch; Jean-Louis Mandel; Hélène Dollfus

Bardet-Biedl syndrome (BBS) is primarily an autosomal recessive ciliopathy characterized by progressive retinal degeneration, obesity, cognitive impairment, polydactyly, and kidney anomalies. The disorder is genetically heterogeneous, with 11 BBS genes identified to date, which account for ~70% of affected families. We have combined single-nucleotide-polymorphism array homozygosity mapping with in silico analysis to identify a new BBS gene, BBS12. Patients from two Gypsy families were homozygous and haploidentical in a 6-Mb region of chromosome 4q27. FLJ35630 was selected as a candidate gene, because it was predicted to encode a protein with similarity to members of the type II chaperonin superfamily, which includes BBS6 and BBS10. We found pathogenic mutations in both Gypsy families, as well as in 14 other families of various ethnic backgrounds, indicating that BBS12 accounts for approximately 5% of all BBS cases. BBS12 is vertebrate specific and, together with BBS6 and BBS10, defines a novel branch of the type II chaperonin superfamily. These three genes are characterized by unusually rapid evolution and are likely to perform ciliary functions specific to vertebrates that are important in the pathophysiology of the syndrome, and together they account for about one-third of the total BBS mutational load. Consistent with this notion, suppression of each family member in zebrafish yielded gastrulation-movement defects characteristic of other BBS morphants, whereas simultaneous suppression of all three members resulted in severely affected embryos, possibly hinting at partial functional redundancy within this protein family.


Nature Genetics | 2010

Mutations in TMEM216 perturb ciliogenesis and cause Joubert, Meckel and related syndromes

Enza Maria Valente; Clare V. Logan; Soumaya Mougou-Zerelli; Jeong Ho Lee; Jennifer L. Silhavy; Francesco Brancati; Miriam Iannicelli; Lorena Travaglini; Sveva Romani; Barbara Illi; Matthew Adams; Katarzyna Szymanska; Annalisa Mazzotta; Ji Eun Lee; Jerlyn Tolentino; Dominika Swistun; Carmelo Salpietro; Carmelo Fede; Stacey Gabriel; Carsten Russ; Kristian Cibulskis; Carrie Sougnez; Friedhelm Hildebrandt; Edgar A. Otto; Susanne Held; Bill H. Diplas; Erica E. Davis; Mario Mikula; Charles M. Strom; Bruria Ben-Zeev

Joubert syndrome (JBTS), related disorders (JSRDs) and Meckel syndrome (MKS) are ciliopathies. We now report that MKS2 and CORS2 (JBTS2) loci are allelic and caused by mutations in TMEM216, which encodes an uncharacterized tetraspan transmembrane protein. Individuals with CORS2 frequently had nephronophthisis and polydactyly, and two affected individuals conformed to the oro-facio-digital type VI phenotype, whereas skeletal dysplasia was common in fetuses affected by MKS. A single G218T mutation (R73L in the protein) was identified in all cases of Ashkenazi Jewish descent (n = 10). TMEM216 localized to the base of primary cilia, and loss of TMEM216 in mutant fibroblasts or after knockdown caused defective ciliogenesis and centrosomal docking, with concomitant hyperactivation of RhoA and Dishevelled. TMEM216 formed a complex with Meckelin, which is encoded by a gene also mutated in JSRDs and MKS. Disruption of tmem216 expression in zebrafish caused gastrulation defects similar to those in other ciliary morphants. These data implicate a new family of proteins in the ciliopathies and further support allelism between ciliopathy disorders.


Nature Genetics | 2011

CCDC39 is required for assembly of inner dynein arms and the dynein regulatory complex and for normal ciliary motility in humans and dogs

Anne-Christine Merveille; Erica E. Davis; Anita Becker-Heck; Marie Legendre; Israel Amirav; Géraldine Bataille; John W. Belmont; Nicole Beydon; Frédéric Billen; Annick Clement; Cécile Clercx; André Coste; Rachelle H. Crosbie; Jacques de Blic; S. Deleuze; Philippe Duquesnoy; Denise Escalier; Estelle Escudier; Manfred Fliegauf; Judith Horvath; Kent L. Hill; Mark Jorissen; Jocelyne Just; Andreas Kispert; Mark Lathrop; Niki T. Loges; June K. Marthin; Yukihide Momozawa; Guy Montantin; Kim G. Nielsen

Primary ciliary dyskinesia (PCD) is an inherited disorder characterized by recurrent infections of the upper and lower respiratory tract, reduced fertility in males and situs inversus in about 50% of affected individuals (Kartagener syndrome). It is caused by motility defects in the respiratory cilia that are responsible for airway clearance, the flagella that propel sperm cells and the nodal monocilia that determine left-right asymmetry. Recessive mutations that cause PCD have been identified in genes encoding components of the outer dynein arms, radial spokes and cytoplasmic pre-assembly factors of axonemal dyneins, but these mutations account for only about 50% of cases of PCD. We exploited the unique properties of dog populations to positionally clone a new PCD gene, CCDC39. We found that loss-of-function mutations in the human ortholog underlie a substantial fraction of PCD cases with axonemal disorganization and abnormal ciliary beating. Functional analyses indicated that CCDC39 localizes to ciliary axonemes and is essential for assembly of inner dynein arms and the dynein regulatory complex.

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Donna M. Muzny

Baylor College of Medicine

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