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Dive into the research topics where Ronald K.H. Liem is active.

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Featured researches published by Ronald K.H. Liem.


Nature Genetics | 2004

Mutant small heat-shock protein 27 causes axonal Charcot-Marie-Tooth disease and distal hereditary motor neuropathy

Oleg V. Evgrafov; Irena Mersiyanova; Joy Irobi; Ludo Van Den Bosch; Ines Dierick; Conrad L. Leung; Olga Schagina; Nathalie Verpoorten; Katrien Van Impe; Valeriy P. Fedotov; Elena L. Dadali; Michaela Auer-Grumbach; Christian Windpassinger; Klaus Wagner; Zoran Mitrović; David Hilton-Jones; Kevin Talbot; Jean-Jacques Martin; Natalia Vasserman; Svetlana Tverskaya; Alexander V. Polyakov; Ronald K.H. Liem; Jan Gettemans; Wim Robberecht; Vincent Timmerman

Charcot-Marie-Tooth disease (CMT) is the most common inherited neuromuscular disease and is characterized by considerable clinical and genetic heterogeneity. We previously reported a Russian family with autosomal dominant axonal CMT and assigned the locus underlying the disease (CMT2F; OMIM 606595) to chromosome 7q11–q21 (ref. 2). Here we report a missense mutation in the gene encoding 27-kDa small heat-shock protein B1 (HSPB1, also called HSP27) that segregates in the family with CMT2F. Screening for mutations in HSPB1 in 301 individuals with CMT and 115 individuals with distal hereditary motor neuropathies (distal HMNs) confirmed the previously observed mutation and identified four additional missense mutations. We observed the additional HSPB1 mutations in four families with distal HMN and in one individual with CMT neuropathy. Four mutations are located in the Hsp20–α-crystallin domain, and one mutation is in the C-terminal part of the HSP27 protein. Neuronal cells transfected with mutated HSPB1 were less viable than cells expressing the wild-type protein. Cotransfection of neurofilament light chain (NEFL) and mutant HSPB1 resulted in altered neurofilament assembly in cells devoid of cytoplasmic intermediate filaments.


Cell | 1989

αB-crystallin is expressed in non-lenticular tissues and accumulates in Alexander's disease brain

Toru Iwaki; Akiko Kume-Iwaki; Ronald K.H. Liem; James E. Goldman

Abstract Rosenthal fibers (RFs) are abnormal inclusions within astrocytes, characteristic of Alexanders disease. We have previously isolated a 22 kd protein component of RFs from Alexanders disease brain. By Western blotting, we detected its equivalent in several rat organs, with the highest level in heart, and in a human astrocytoma cell line (U-373MG). A cDNA library established from U-373MG was screened with an anti-RF protein antibody. A partial cDNA clone encoding the lens protein αB-crystallin was isolated. The anti-RF protein antibodies react with lens αB-crystallin. Furthermore, the distribution of αB-crystallin mRNA in rat organs is consistent with the Western blots. Therefore, αB-crystallin is not lens-specific and it can accumulate in large amounts in astrocytes in pathological conditions.


Trends in Cell Biology | 2002

Plakins: a family of versatile cytolinker proteins

Conrad L. Leung; Kathleen J. Green; Ronald K.H. Liem

By connecting cytoskeletal elements to each other and to junctional complexes, the plakin family of cytolinkers plays a crucial role in orchestrating cellular development and maintaining tissue integrity. Plakins are built from combinations of interacting domains that bind to microfilaments, microtubules, intermediate filaments, cell-adhesion molecules and members of the armadillo family. Plakins are involved in both inherited and autoimmune diseases that affect the skin, neuronal tissue, and cardiac and skeletal muscle. Here, we describe the members of the plakin family and their interaction partners, and give examples of the cellular defects that result from their dysfunction.


Nature Cell Biology | 2000

Rapid movement of axonal neurofilaments interrupted by prolonged pauses

Lei Wang; Chung Liang Ho; Dongming Sun; Ronald K.H. Liem; Anthony Brown

Axonal cytoskeletal and cytosolic proteins are synthesized in the neuronal cell body and transported along axons by slow axonal transport, but attempts to observe this movement directly in living cells have yielded conflicting results. Here we report the direct observation of the axonal transport of neurofilament protein tagged with green fluorescent protein in cultured nerve cells. Live-cell imaging of naturally occurring gaps in the axonal neurofilament array reveals rapid, intermittent and highly asynchronous movement of fluorescent neurofilaments. The movement is bidirectional, but predominantly anterograde. Our data indicate that the slow rate of slow axonal transport may be the result of rapid movements interrupted by prolonged pauses.


Developmental Biology | 1984

Development of cerebellar astroglia: transitions in form and cytoskeletal content.

Paola Bovolenta; Ronald K.H. Liem; Carol Ann Mason

The forms, disposition, and cytoskeletal contents of astroglia in immature mouse cerebellum were studied by immunocytochemical staining with antisera against two intermediate filament proteins, vimentin (Vim) (58,000 daltons) and glial filament protein (GF) (51,000 daltons). From embryonic (E) Day 15 to postnatal (P) Day 2, Vim is expressed in cells throughout the cerebellar anlage, including radial glia and Bergmann fibers, cells with amorphous shapes and 2-3 processes, and thick longitudinal elements oriented parallel to axons within axon tracts. GF is not expressed during the first few postnatal days, but by P7, there is a dramatic increase in GF-positive astrocyte-like cells in the putative white matter that are more densely stained and more crowded than at any other age. Between P7 and P14 all astrocytes throughout the cerebellum express both Vim and GF. From P21 on, Vim expression is progressively rarer in all astrocytes except for Bergmann fibers, and GF-positive astrocytes become less numerous. These findings raise two issues: (a) the lineage and relationships of cells expressing Vim and GF; (b) Since GF-positive cells appear as axon ingrowth ceases, axons must grow in a terrain comprised of glial cells that have a different cytoskeletal composition (vimentin), reflecting a less differentiated state, than mature astrocytes or than the GF-rich astrocytes that proliferate after injury in adult CNS.


Cell | 1990

Intermediate filament dynamics.

Peter M. Steinert; Ronald K.H. Liem

Article synthese sur le role des filaments intermediaires dans la dynamique cellulaire; implications dans le cytosquelette


Journal of Cell Biology | 2001

The BPAG1 locus: alternative splicing produces multiple isoforms with distinct cytoskeletal linker domains, including predominant isoforms in neurons and muscles

Conrad L. Leung; Min Zheng; Susan M. Prater; Ronald K.H. Liem

Bullous pemphigoid antigen 1 (BPAG1) is a member of the plakin family with cytoskeletal linker properties. Mutations in BPAG1 cause sensory neuron degeneration and skin fragility in mice. We have analyzed the BPAG1 locus in detail and found that it encodes different interaction domains that are combined in tissue-specific manners. These domains include an actin-binding domain (ABD), a plakin domain, a coiled coil (CC) rod domain, two different potential intermediate filament–binding domains (IFBDs), a spectrin repeat (SR)-containing rod domain, and a microtubule-binding domain (MTBD). There are at least three major forms of BPAG1: BPAG1-e (302 kD), BPAG1-a (615 kD), and BPAG1-b (834 kD). BPAG1-e has been described previously and consists of the plakin domain, the CC rod domain, and the first IFBD. It is the primary epidermal BPAG1 isoform, and its absence that is the likely cause of skin fragility in mutant mice. BPAG1-a is the major isoform in the nervous system and a homologue of the microtubule actin cross-linking factor, MACF. BPAG1-a is composed of the ABD, the plakin domain, the SR-containing rod domain, and the MTBD. The absence of BPAG1-a is the likely cause of sensory neurodegeneration in mutant mice. BPAG1-b is highly expressed in muscles, and has extra exons encoding a second IFBD between the plakin and SR-containing rod domains of BPAG1-a.


Developmental Biology | 1984

The differential appearance of neurofilament triplet polypeptides in the developing rat optic nerve

Joel S. Pachter; Ronald K.H. Liem

The ontogenetic appearance of the individual triplet polypeptides that comprise mammalian neurofilaments was studied in the developing rat optic nerve. Triton-insoluble cytoskeletal preparations from the optic nerves of rats of postnatal ages 1 Day (P1), 6 days (P6), 10 days (P10), 20 days (P20), and 3 months (adult) were analyzed for protein composition by one and two-dimensional gel electrophoresis. Results indicate that at P1, both the 150- and 68-kDa neurofilament subunit proteins are present. The 200-kDa subunit first becomes discernible at P20, but, at this age, it is still present in considerably less quantity than in the adult. Immunocytochemical verification of the presence of neurofilament protein was accomplished by staining tissue sections with specific antibodies against the 150- and the 68-kDa neurofilament subunits using the peroxidase-antiperoxidase technique. Results of the morphological analyses have shown that neurofilaments are not present in quantity until P10, which coincides with the time when the 68-kDa subunit increases in quantity by one dimensional gel analysis. Thus, the 150- and 68-kDa subunits can be detected prior to the appearance of neurofilaments, and the 200-kDa protein is not observed until sometime later. The potential physiological significance of the differential subunit transport is discussed with respect to neuronal differentiation in the developing mammalian CNS.


The Journal of Neuroscience | 2006

α-Internexin Is Structurally and Functionally Associated with the Neurofilament Triplet Proteins in the Mature CNS

Aidong Yuan; Mala V. Rao; Takahiro Sasaki; Yuanxin Chen; Asok Kumar; Veeranna; Ronald K.H. Liem; Joël Eyer; Alan Peterson; Jean-Pierre Julien; Ralph A. Nixon

α-Internexin, a neuronal intermediate filament protein implicated in neurodegenerative disease, coexists with the neurofilament (NF) triplet proteins (NF-L, NF-M, and NF-H) but has an unknown function. The earlier peak expression of α-internexin than the triplet during brain development and its ability to form homopolymers, unlike the triplet, which are obligate heteropolymers, have supported a widely held view that α-internexin and neurofilament triplet form separate filament systems. Here, we demonstrate, however, that despite a postnatal decline in expression, α-internexin is as abundant as the triplet in the adult CNS and exists in a relatively fixed stoichiometry with these subunits. α-Internexin exhibits transport and turnover rates identical to those of triplet proteins in optic axons and colocalizes with NF-M on single neurofilaments by immunogold electron microscopy. α-Internexin also coassembles with all three neurofilament proteins into a single network of filaments in quadruple-transfected SW13vim(−) cells. Genetically deleting NF-M alone or together with NF-H in mice dramatically reduces α-internexin transport and content in axons throughout the CNS. Moreover, deleting α-internexin potentiates the effects of NF-M deletion on NF-H and NF-L transport. Finally, overexpressing a NF-H–LacZ fusion protein in mice induces α-internexin and neurofilament triplet to aggregate in neuronal perikarya and greatly reduces their transport and content selectively in axons. Our data show that α-internexin and the neurofilament proteins are functionally interdependent. The results strongly support the view that α-internexin is a fourth subunit of neurofilaments in the adult CNS, providing a basis for its close relationship with neurofilaments in CNS diseases associated with neurofilament accumulation.


Nature Reviews Molecular Cell Biology | 2004

PLAKINS: GOLIATHS THAT LINK CELL JUNCTIONS AND THE CYTOSKELETON

Julius J. Jefferson; Conrad L. Leung; Ronald K.H. Liem

Plakins comprise a family of proteins that crosslink cytoskeletal filaments and attach them to membrane-associated complexes at cell junctions. They were originally found associated with intermediate filaments and were believed to function primarily in maintaining epithelial tissue integrity. However, new plakins with unique isoforms that are enormous in size have been identified in the past few years. These new plakins have highlighted further functions in all the cytoskeletal networks, as well as in non-epithelial cells.

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Raul Perez-Olle

Columbia University Medical Center

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Chung Liang Ho

National Cheng Kung University

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Chung-Liang Chien

National Taiwan University

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