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Filemon K Tan

Publications and source records attributed to Filemon K Tan.

25 records · Page 2Linked to original sources

Systemic sclerosis: the susceptible host (genetics and environment).

It is becoming evident that several genetic factors participate in modulating susceptibility to SSc and its clinical manifestations. Some genes that specifically affect ECM metabolism and vascular function may be unique to SSc and scleroderma-related disorders; others, such as those genes involved in regulating immune tolerance, are likely shared with other autoimmune diseases. The effect of genetic variations (or polymorphisms) that are found in most of these genes taken individually will likely have only a small or modest effect on disease risk; only a few genetic variations are expected to be highly penetrant. Moreover, genetic studies in SSc have to deal with the additional issues of heterogeneous phenotypes, low disease prevalence in the general population, and an even greater paucity of multiplex families that makes traditional linkage studies difficult, if not impossible. Alternative approaches include allelic association studies, but conventional case-controls designs may be subject to selection bias and will require large sample sizes if the genes that are under investigation confer only modest (OR = 1.5-2.0) disease risk (Fig. 2). The simultaneous examination of several genes that are biologically relevant to a specific disease process to attain higher aggregate ORs, is one approach that was used in several reports that were cited in this review. The use of family-based controls, such as in the transmission-disequilibrium test (based on assessment of the transmitted or nontransmitted alleles that are associated with disease from heterozygous parents to affected offspring), would provide more robustness to spurious associations from population stratification, but is actually less powerful and efficient than case-control designs. Furthermore, for many late adult-onset diseases the effort required to obtain samples from living parents are for a variety of reasons not trivial. The success of these allelic association-based approaches depends on the identification of likely candidate disease genes (or at least markers in disequilibrium with disease genes), careful definition/ascertainment of disease phenotypes to minimize genetic heterogeneity, and for case-control designs, strategies to account for population stratification or admixture. The identification of candidate genes will be aided by rapid progress in the Human Genome Project and other genome efforts that will eventually identify all human genetic variations. Although this will lead to better understanding of the genes that might be involved in complex diseases, much work is required to understand the basic biology of how disease genotypes become clinical phenotypes. This is especially daunting in complex diseases, such as SSc, where the phenotype (including disease susceptibility and clinical presentation) is influenced by dynamic interactions between genetic variations and environment. Multi-center collaborative efforts with research paradigms that integrate genetic and environmental factors (including sociodemographic variables) will be required to elucidate the contribution of environment and genetics in the pathogenesis of SSc.

Environmental Exposure↗

Identification of novel targets in scleroderma: update on population studies, cDNA arrays, SNP analysis, and mutations.

PURPOSE OF REVIEW: Systemic sclerosis, or scleroderma, is an uncommon autoimmune connective tissue disease that results in systemic fibrosis. Its etiologic basis remains unclear. The pathogenesis of systemic sclerosis involves a proliferative and obliterative vasculopathy resulting from endothelial cell dysfunction, extensive fibrosis secondary to fibroblast activation, and autoimmunity as demonstrated by the presence of disease-specific autoantibodies. Although there is no clear and convincing evidence for an environmental trigger in most cases, accumulating data emphasize the role of genetic factors in systemic sclerosis. As in other complex human diseases, multiple genes likely contribute to disease susceptibility and the clinical manifestations of systemic sclerosis. This review will cover the application of genomics to the complex genetics of systemic sclerosis. RECENT FINDINGS: The following review is an update on novel targets identified in scleroderma based on published reports (May 2000-May 2003) of mutation/polymorphism analysis (using SNP and haplotyping), the results from a recent genome-wide scan on a Native American population with systemic sclerosis, and gene expression studies (microarrays). SUMMARY: The use of genomics has revealed novel targets and genetic associations that may contribute to the cause, the onset, and the subsequent pathologic changes that constitute systemic sclerosis. The identification of potential candidates for gene therapy or disease-specific targets amenable to pharmacologic intervention will benefit patients with systemic sclerosis who are currently being treated for their symptoms and not the disease process itself.

Autoantibodies↗

Association of 5'-untranslated region of the Fibrillin-1 gene with Japanese scleroderma.

Excessive production of extracellular matrix (ECM) constituents is a hallmark scleroderma or systemic sclerosis (SSc). Fibrillin-1, a major component of microfibrils in the ECM, may play a role in the pathogenesis of SSc. The TSK1 mouse model of SSc bears an in-frame duplication of the Fibrillin-1 gene (FBN1) which results in a larger than normal protein that is more susceptible to proteolysis. Metabolic labeling studies of Fibrillin-1 in human SSc dermal fibroblasts demonstrated that while normal amounts of Fibrillin-1 are synthesized, the protein itself appears to be unstable. Moreover, autoantibodies specific for Fibrillin-1 have been demonstrated in serum from SSc patients and TSK1 mice. In particular, a high frequency of anti-Fibrillin-1 was observed in Japanese patients with diffuse and limited scleroderma or CREST (calcinosis, Raynaud phenomenon, esophageal dysmotility, sclerodactyly, telangiectasia) syndrome. Genetic studies in a Native American population with high prevalence of using microsatellite marker showed strong association between FBN1 haplotypes and SSc. Subsequently, studies of FBN1 single nucleotide polymorphisms (SNPs) demonstrated that certain FBN1 haplotypes were associated with SSc in both Native American and Japanese patients with limited scleroderma. Thus, FBN1 was sequenced in 22 Japanese SSc patients to ascertain the presence of any relevant mutations or SNPs. Sequence analysis revealed eight coding and 14 non-coding SNPs and other polymorphisms. Among them, a CT insertion in the 5'-untranslated region of exon A had a significant negative association with disease.

5' Flanking Region↗

Association of novel polymorphisms with the expression of SPARC in normal fibroblasts and with susceptibility to scleroderma.

OBJECTIVE: Fibroblasts from patients with systemic sclerosis (SSc) have an activated phenotype characterized by increased synthesis of extracellular matrix (ECM) components. SPARC (secreted protein, acidic and rich in cysteine) regulates the deposition or assembly of ECM components. The aim of this study was to investigate the role of SPARC in SSc susceptibility by functional and genetic association studies. METHODS: Complementary DNA (cDNA) microarrays were used to obtain gene expression data on cultured dermal fibroblasts from SSc patients. SPARC protein levels were assessed by Western blotting. Five polymorphic microsatellite markers within 5 cM of the SPARC gene (chromosome 5q31-32) were genotyped in Choctaw Indians, a population previously shown to have a high prevalence of SSc. Discovery of single-nucleotide polymorphisms (SNPs) was accomplished by sequencing the SPARC cDNA. These SNPs were then genotyped in a multi-ethnic cohort of SSc patients to determine potential associations with disease susceptibility in a broader population of SSc patients, as well as with various clinical and immunologic features of SSc. The functional relevance of these SNPs with regard to transcript stability of SPARC was also assessed. RESULTS: Microarrays demonstrated increased expression of SPARC, along with other ECM genes, in SSc patients compared with normal controls. SSc fibroblasts also had increased SPARC protein levels. Three of 5 microsatellite markers near SPARC showed significant associations with SSc in the Choctaw SSc patients. Sequencing of SPARC cDNA revealed 3 novel SNPs in the 3'-untranslated region at +998 (C-->G), +1551 (C-->G), and +1922 (T-->G). Homozygosity for the C allele at SNP +998 was significantly increased in SSc patients across ethnic lines. SPARC SNPs +1551 and +1922 demonstrated correlations with Raynaud's phenomenon and pulmonary fibrosis, respectively. Functional studies of SPARC SNP +998 in normal fibroblast cultures suggested a correlation between the SNP +998 C allele polymorphism and an increased messenger RNA half-life. CONCLUSION: This study is the first to show that polymorphisms of the SPARC gene are associated with susceptibility to, and clinical manifestations of, SSc and that they may also be functionally important in influencing SPARC expression in skin fibroblasts.

Blotting, Western↗

Genotypic analysis of the TGF beta-509 allele in patients with systemic lupus erythematosus and Sjogren's syndrome.

Transforming growth factor beta (TGFbeta) is a secreted protein present in the circulation and is a critical regulator of the body's immune system. TGFbeta is believed to control several components of the immune system and inhibit autoimmune reactions. Systemic lupus erythematosus (SLE) and Sjogren's syndrome (SS) are prototypical human autoimmune diseases characterized by the circulating autoantibodies directed against nuclear antigens and immune complex deposition in various tissues leading to target organ inflammation and damage. Although the etiology of SLE is unknown, it has been observed that patients with SLE have lower levels of circulating TGFbeta than healthy individuals. In addition, mice lacking the TGFbeta1 gene develop a severe autoimmune disease that has features of both SS and SLE. Polymorphisms in the TGFbeta1 gene may alter the mRNA expression levels and influence the plasma protein concentration. Of the known TGFbeta 1 polymorphisms, only the C-509T polymorphism in the promoter region has been shown to be significantly associated with the plasma concentrations of TGFbeta 1. In this study, we have conducted a blinded study to determine if the -509 TGFbeta1 gene polymorphism is associated with SS or SLE. Genomic PCR and RFLP analysis of a 441 bp sequence encompassing the -509 polymorphism of the TGFbeta gene indicated that there were no statistically significant clinical correlations.

DNA↗