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Dive into the research topics where Niki T. Loges is active.

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Featured researches published by Niki T. Loges.


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.


Nature Genetics | 2011

The coiled-coil domain containing protein CCDC40 is essential for motile cilia function and left-right axis formation

Anita Becker-Heck; Irene E. Zohn; Noriko Okabe; Andrew Pollock; Kari Baker Lenhart; Jessica Sullivan-Brown; Jason McSheene; Niki T. Loges; Heike Olbrich; Karsten Haeffner; Manfred Fliegauf; Judith Horvath; Richard Reinhardt; Kim G. Nielsen; June K. Marthin; György Baktai; Kathryn V. Anderson; Robert Geisler; Lee Niswander; Heymut Omran; Rebecca D. Burdine

Primary ciliary dyskinesia (PCD) is a genetically heterogeneous autosomal recessive disorder characterized by recurrent infections of the respiratory tract associated with the abnormal function of motile cilia. Approximately half of individuals with PCD also have alterations in the left-right organization of their internal organ positioning, including situs inversus and situs ambiguous (Kartageners syndrome). Here, we identify an uncharacterized coiled-coil domain containing a protein, CCDC40, essential for correct left-right patterning in mouse, zebrafish and human. In mouse and zebrafish, Ccdc40 is expressed in tissues that contain motile cilia, and mutations in Ccdc40 result in cilia with reduced ranges of motility. We further show that CCDC40 mutations in humans result in a variant of PCD characterized by misplacement of the central pair of microtubules and defective assembly of inner dynein arms and dynein regulatory complexes. CCDC40 localizes to motile cilia and the apical cytoplasm and is required for axonemal recruitment of CCDC39, disruption of which underlies a similar variant of PCD.


American Journal of Human Genetics | 2008

DNAI2 Mutations Cause Primary Ciliary Dyskinesia with Defects in the Outer Dynein Arm

Niki T. Loges; Heike Olbrich; Lale Fenske; Huda Mussaffi; Judit Horvath; Manfred Fliegauf; Heiner Kuhl; György Baktai; Rahul Chodhari; Eddie M. K. Chung; Andrew Rutman; Christopher O'Callaghan; Hannah Blau; László Tiszlavicz; Katarzyna Voelkel; Michał Witt; Ewa Ziętkiewicz; Juergen Neesen; Richard Reinhardt; Hannah M. Mitchison; Heymut Omran

Primary ciliary dyskinesia (PCD) is a genetically heterogeneous disorder characterized by chronic destructive airway disease and randomization of left/right body asymmetry. Males often have reduced fertility due to impaired sperm tail function. The complex PCD phenotype results from dysfunction of cilia of the airways and the embryonic node and the structurally related motile sperm flagella. This is associated with underlying ultrastructural defects that frequently involve the outer dynein arm (ODA) complexes that generate cilia and flagella movement. Applying a positional and functional candidate-gene approach, we identified homozygous loss-of-function DNAI2 mutations (IVS11+1G > A) in four individuals from a family with PCD and ODA defects. Further mutational screening of 105 unrelated PCD families detected two distinct homozygous mutations, including a nonsense (c.787C > T) and a splicing mutation (IVS3-3T > G) resulting in out-of-frame transcripts. Analysis of protein expression of the ODA intermediate chain DNAI2 showed sublocalization throughout respiratory cilia. Electron microscopy showed that mutant respiratory cells from these patients lacked DNAI2 protein expression and exhibited ODA defects. High-resolution immunofluorescence imaging demonstrated absence of the ODA heavy chains DNAH5 and DNAH9 from all DNAI2 mutant ciliary axonemes. In addition, we demonstrated complete or distal absence of DNAI2 from ciliary axonemes in respiratory cells of patients with mutations in genes encoding the ODA chains DNAH5 and DNAI1, respectively. Thus, DNAI2 and DNAH5 mutations affect assembly of proximal and distal ODA complexes, whereas DNAI1 mutations mainly disrupt assembly of proximal ODA complexes.


American Journal of Human Genetics | 2009

Deletions and point mutations of LRRC50 cause primary ciliary dyskinesia due to dynein arm defects.

Niki T. Loges; Heike Olbrich; Anita Becker-Heck; Karsten Häffner; Angelina Heer; Christina Reinhard; Miriam Schmidts; Andreas Kispert; Maimoona A. Zariwala; Margaret W. Leigh; Hanswalter Zentgraf; Horst Seithe; Gudrun Nürnberg; Peter Nürnberg; Richard Reinhardt; Heymut Omran

Genetic defects affecting motility of cilia and flagella cause chronic destructive airway disease, randomization of left-right body asymmetry, and, frequently, male infertility in primary ciliary dyskinesia (PCD). The most frequent defects involve outer and inner dynein arms (ODAs and IDAs) that are large multiprotein complexes responsible for cilia-beat generation and regulation, respectively. Here, we demonstrate that large genomic deletions, as well as point mutations involving LRRC50, are responsible for a distinct PCD variant that is characterized by a combined defect involving assembly of the ODAs and IDAs. Functional analyses showed that LRRC50 deficiency disrupts assembly of distally and proximally DNAH5- and DNAI2-containing ODA complexes, as well as DNALI1-containing IDA complexes, resulting in immotile cilia. On the basis of these findings, we assume that LRRC50 plays a role in assembly of distinct dynein-arm complexes.


American Journal of Human Genetics | 2012

Recessive HYDIN mutations cause primary ciliary dyskinesia without randomization of left-right body asymmetry.

Heike Olbrich; Miriam Schmidts; Claudius Werner; Alexandros Onoufriadis; Niki T. Loges; Johanna Raidt; Nora F. Banki; Amelia Shoemark; Tom Burgoyne; Saeed Al Turki; Gabriele Köhler; Josef Schroeder; Gudrun Nürnberg; Peter Nürnberg; Eddie M. K. Chung; Richard Reinhardt; June K. Marthin; Kim G. Nielsen; Hannah M. Mitchison; Heymut Omran

Primary ciliary dyskinesia (PCD) is a genetically heterogeneous recessive disorder characterized by defective cilia and flagella motility. Chronic destructive-airway disease is caused by abnormal respiratory-tract mucociliary clearance. Abnormal propulsion of sperm flagella contributes to male infertility. Genetic defects in most individuals affected by PCD cause randomization of left-right body asymmetry; approximately half show situs inversus or situs ambiguous. Almost 70 years after the hy3 mouse possessing Hydin mutations was described as a recessive hydrocephalus model, we report HYDIN mutations in PCD-affected persons without hydrocephalus. By homozygosity mapping, we identified a PCD-associated locus, chromosomal region 16q21-q23, which contains HYDIN. However, a nearly identical 360 kb paralogous segment (HYDIN2) in chromosomal region 1q21.1 complicated mutational analysis. In three affected German siblings linked to HYDIN, we identified homozygous c.3985G>T mutations that affect an evolutionary conserved splice acceptor site and that subsequently cause aberrantly spliced transcripts predicting premature protein termination in respiratory cells. Parallel whole-exome sequencing identified a homozygous nonsense HYDIN mutation, c.922A>T (p.Lys307(∗)), in six individuals from three Faroe Island PCD-affected families that all carried an 8.8 Mb shared haplotype across HYDIN, indicating an ancestral founder mutation in this isolated population. We demonstrate by electron microscopy tomography that, consistent with the effects of loss-of-function mutations, HYDIN mutant respiratory cilia lack the C2b projection of the central pair (CP) apparatus; similar findings were reported in Hydin-deficient Chlamydomonas and mice. High-speed videomicroscopy demonstrated markedly reduced beating amplitudes of respiratory cilia and stiff sperm flagella. Like the hy3 mouse model, all nine PCD-affected persons had normal body composition because nodal cilia function is apparently not dependent on the function of the CP apparatus.


web science | 2012

Mutations in axonemal dynein assembly factor DNAAF3 cause primary ciliary dyskinesia

Hannah M. Mitchison; Miriam Schmidts; Niki T. Loges; Judy Freshour; Athina Dritsoula; Robert A. Hirst; Christopher J. O'Callaghan; Hannah Blau; Maha Al Dabbagh; Heike Olbrich; Philip L. Beales; Toshiki Yagi; Huda Mussaffi; Eddie M. K. Chung; Heymut Omran; David R. Mitchell

Primary ciliary dyskinesia most often arises from loss of the dynein motors that power ciliary beating. Here we show that DNAAF3 (also known as PF22), a previously uncharacterized protein, is essential for the preassembly of dyneins into complexes before their transport into cilia. We identified loss-of-function mutations in the human DNAAF3 gene in individuals from families with situs inversus and defects in the assembly of inner and outer dynein arms. Knockdown of dnaaf3 in zebrafish likewise disrupts dynein arm assembly and ciliary motility, causing primary ciliary dyskinesia phenotypes that include hydrocephalus and laterality malformations. Chlamydomonas reinhardtii PF22 is exclusively cytoplasmic, and a PF22-null mutant cannot assemble any outer and some inner dynein arms. Altered abundance of dynein subunits in mutant cytoplasm suggests that DNAAF3 (PF22) acts at a similar stage as other preassembly proteins, for example, DNAAF2 (also known as PF13 or KTU) and DNAAF1 (also known as ODA7 or LRRC50), in the dynein preassembly pathway. These results support the existence of a conserved, multistep pathway for the cytoplasmic formation of assembly competent ciliary dynein complexes.


Nature Genetics | 2012

CCDC103 mutations cause primary ciliary dyskinesia by disrupting assembly of ciliary dynein arms

Jennifer R. Panizzi; Anita Becker-Heck; Victoria H. Castleman; Dalal A Al-Mutairi; Yan Liu; Niki T. Loges; Narendra Pathak; Christina Austin-Tse; Eamonn Sheridan; Miriam Schmidts; Heike Olbrich; Claudius Werner; Karsten Häffner; Nathan Hellman; Rahul Chodhari; Amar Gupta; Albrecht Kramer-Zucker; Felix Olale; Rebecca D. Burdine; Alexander F. Schier; Christopher J. O'Callaghan; Eddie M. K. Chung; Richard Reinhardt; Hannah M. Mitchison; Stephen M. King; Heymut Omran; Iain A. Drummond

Cilia are essential for fertilization, respiratory clearance, cerebrospinal fluid circulation and establishing laterality. Cilia motility defects cause primary ciliary dyskinesia (PCD, MIM244400), a disorder affecting 1:15,000–30,000 births. Cilia motility requires the assembly of multisubunit dynein arms that drive ciliary bending. Despite progress in understanding the genetic basis of PCD, mutations remain to be identified for several PCD-linked loci. Here we show that the zebrafish cilia paralysis mutant schmalhans (smhtn222) encodes the coiled-coil domain containing 103 protein (Ccdc103), a foxj1a-regulated gene product. Screening 146 unrelated PCD families identified individuals in six families with reduced outer dynein arms who carried mutations in CCDC103. Dynein arm assembly in smh mutant zebrafish was rescued by wild-type but not mutant human CCDC103. Chlamydomonas Ccdc103/Pr46b functions as a tightly bound, axoneme-associated protein. These results identify Ccdc103 as a dynein arm attachment factor that causes primary ciliary dyskinesia when mutated.


Nature Genetics | 2013

DYX1C1 is required for axonemal dynein assembly and ciliary motility

Aarti Tarkar; Niki T. Loges; Christopher E. Slagle; Richard Francis; Gerard W. Dougherty; Joel V. Tamayo; Brett A. Shook; Marie E. Cantino; D. A. Schwartz; Charlotte Jahnke; Heike Olbrich; Claudius Werner; Johanna Raidt; Petra Pennekamp; Marouan Abouhamed; Rim Hjeij; Gabriele Köhler; Matthias Griese; You Li; Kristi Lemke; Nikolas Klena; Xiaoqin Liu; George C. Gabriel; Kimimasa Tobita; Martine Jaspers; Lucy Morgan; Adam J. Shapiro; Stef J.F. Letteboer; Dorus A. Mans; Johnny L. Carson

DYX1C1 has been associated with dyslexia and neuronal migration in the developing neocortex. Unexpectedly, we found that deleting exons 2–4 of Dyx1c1 in mice caused a phenotype resembling primary ciliary dyskinesia (PCD), a disorder characterized by chronic airway disease, laterality defects and male infertility. This phenotype was confirmed independently in mice with a Dyx1c1 c.T2A start-codon mutation recovered from an N-ethyl-N-nitrosourea (ENU) mutagenesis screen. Morpholinos targeting dyx1c1 in zebrafish also caused laterality and ciliary motility defects. In humans, we identified recessive loss-of-function DYX1C1 mutations in 12 individuals with PCD. Ultrastructural and immunofluorescence analyses of DYX1C1-mutant motile cilia in mice and humans showed disruptions of outer and inner dynein arms (ODAs and IDAs, respectively). DYX1C1 localizes to the cytoplasm of respiratory epithelial cells, its interactome is enriched for molecular chaperones, and it interacts with the cytoplasmic ODA and IDA assembly factor DNAAF2 (KTU). Thus, we propose that DYX1C1 is a newly identified dynein axonemal assembly factor (DNAAF4).


Nature Genetics | 2013

The nexin-dynein regulatory complex subunit DRC1 is essential for motile cilia function in algae and humans

Maureen Wirschell; Heike Olbrich; Claudius Werner; Douglas Tritschler; Raqual Bower; Winfield S. Sale; Niki T. Loges; Petra Pennekamp; Sven Lindberg; Unne Stenram; Birgitta Carlén; Elisabeth Horak; Gabriele Köhler; Peter Nürnberg; Gudrun Nürnberg; Mary E. Porter; Heymut Omran

Primary ciliary dyskinesia (PCD) is characterized by dysfunction of respiratory cilia and sperm flagella and random determination of visceral asymmetry. Here, we identify the DRC1 subunit of the nexin-dynein regulatory complex (N-DRC), an axonemal structure critical for the regulation of dynein motors, and show that mutations in the gene encoding DRC1, CCDC164, are involved in PCD pathogenesis. Loss-of-function mutations disrupting DRC1 result in severe defects in assembly of the N-DRC structure and defective ciliary movement in Chlamydomonas reinhardtii and humans. Our results highlight a role for N-DRC integrity in regulating ciliary beating and provide the first direct evidence that mutations in DRC genes cause human disease.


Thorax | 2012

Mutations of DNAH11 in patients with primary ciliary dyskinesia with normal ciliary ultrastructure

Margaret W. Leigh; Johnny L. Carson; Stephanie D. Davis; Sharon D. Dell; Thomas W. Ferkol; Kenneth N. Olivier; Scott D. Sagel; Margaret Rosenfeld; Kimberlie A. Burns; Susan L. Minnix; Michael C. Armstrong; Adriana Lori; Milan J. Hazucha; Niki T. Loges; Heike Olbrich; Anita Becker-Heck; Miriam Schmidts; Claudius Werner; Heymut Omran; Maimoona A. Zariwala

Rationale Primary ciliary dyskinesia (PCD) is an autosomal recessive, genetically heterogeneous disorder characterised by oto-sino-pulmonary disease and situs abnormalities (Kartagener syndrome) due to abnormal structure and/or function of cilia. Most patients currently recognised to have PCD have ultrastructural defects of cilia; however, some patients have clinical manifestations of PCD and low levels of nasal nitric oxide, but normal ultrastructure, including a few patients with biallelic mutations in dynein axonemal heavy chain 11 (DNAH11). Objectives To test further for mutant DNAH11 as a cause of PCD, DNAH11 was sequenced in patients with a PCD clinical phenotype, but no known genetic aetiology. Methods 82 exons and intron/exon junctions in DNAH11 were sequenced in 163 unrelated patients with a clinical phenotype of PCD, including those with normal ciliary ultrastructure (n=58), defects in outer and/or inner dynein arms (n=76), radial spoke/central pair defects (n=6), and 23 without definitive ultrastructural results, but who had situs inversus (n=17), or bronchiectasis and/or low nasal nitric oxide (n=6). Additionally, DNAH11 was sequenced in 13 subjects with isolated situs abnormalities to see if mutant DNAH11 could cause situs defects without respiratory disease. Results Of the 58 unrelated patients with PCD with normal ultrastructure, 13 (22%) had two (biallelic) mutations in DNAH11; and two patients without ultrastructural analysis had biallelic mutations. All mutations were novel and private. None of the patients with dynein arm or radial spoke/central pair defects, or isolated situs abnormalities, had mutations in DNAH11. Of the 35 identified mutant alleles, 24 (69%) were nonsense, insertion/deletion or loss-of-function splice-site mutations. Conclusions Mutations in DNAH11 are a common cause of PCD in patients without ciliary ultrastructural defects; thus, genetic analysis can be used to ascertain the diagnosis of PCD in this challenging group of patients.

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Heymut Omran

Boston Children's Hospital

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Heike Olbrich

Boston Children's Hospital

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Claudius Werner

Boston Children's Hospital

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Petra Pennekamp

Boston Children's Hospital

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Johanna Raidt

Boston Children's Hospital

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Julia Wallmeier

Boston Children's Hospital

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Rim Hjeij

Boston Children's Hospital

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Kim G. Nielsen

Copenhagen University Hospital

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