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Dive into the research topics where Dong Chuan Guo is active.

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Featured researches published by Dong Chuan Guo.


American Journal of Human Genetics | 2009

Mutations in Smooth Muscle Alpha-Actin (ACTA2) Cause Coronary Artery Disease, Stroke, and Moyamoya Disease, Along with Thoracic Aortic Disease

Dong Chuan Guo; Christina L. Papke; Van Tran-Fadulu; Ellen S. Regalado; Nili Avidan; Ralph J. Johnson; Dong H. Kim; Hariyadarshi Pannu; Marcia C. Willing; Elizabeth Sparks; Reed E. Pyeritz; Michael Singh; Ronald L. Dalman; James C. Grotta; Ali J. Marian; Eric Boerwinkle; Lorraine Frazier; Scott A. LeMaire; Joseph S. Coselli; Anthony L. Estrera; Hazim J. Safi; Sudha Veeraraghavan; Donna M. Muzny; David A. Wheeler; James T. Willerson; Robert Yu; Sanjay Shete; Steven E. Scherer; C. S. Raman; L. Maximilian Buja

The vascular smooth muscle cell (SMC)-specific isoform of alpha-actin (ACTA2) is a major component of the contractile apparatus in SMCs located throughout the arterial system. Heterozygous ACTA2 mutations cause familial thoracic aortic aneurysms and dissections (TAAD), but only half of mutation carriers have aortic disease. Linkage analysis and association studies of individuals in 20 families with ACTA2 mutations indicate that mutation carriers can have a diversity of vascular diseases, including premature onset of coronary artery disease (CAD) and premature ischemic strokes (including Moyamoya disease [MMD]), as well as previously defined TAAD. Sequencing of DNA from patients with nonfamilial TAAD and from premature-onset CAD patients independently identified ACTA2 mutations in these patients and premature onset strokes in family members with ACTA2 mutations. Vascular pathology and analysis of explanted SMCs and myofibroblasts from patients harboring ACTA2 suggested that increased proliferation of SMCs contributed to occlusive diseases. These results indicate that heterozygous ACTA2 mutations predispose patients to a variety of diffuse and diverse vascular diseases, including TAAD, premature CAD, ischemic strokes, and MMD. These data demonstrate that diffuse vascular diseases resulting from either occluded or enlarged arteries can be caused by mutations in a single gene and have direct implications for clinical management and research on familial vascular diseases.


Annual Review of Genomics and Human Genetics | 2008

Genetic Basis of Thoracic Aortic Aneurysms and Dissections: Focus on Smooth Muscle Cell Contractile Dysfunction

Dianna M. Milewicz; Dong Chuan Guo; Tran-Fadulu; Lafont Al; Christina L. Papke; Inamoto S; Kwartler Cs; Hariyadarshi Pannu

Thoracic aortic aneurysms leading to type A dissections (TAAD) can be inherited in isolation or in association with genetic syndromes, such as Marfan syndrome and Loeys-Dietz syndrome. When TAAD occurs in the absence of syndromic features, it is inherited in an autosomal dominant manner with decreased penetrance and variable expression, the disease is referred to as familial TAAD. Familial TAAD exhibits significant clinical and genetic heterogeneity. The first genes identified to cause TAAD were FBN1, TGFBR2, and TGFBR1. The identification and characterization of these genes suggested that increased TGF-beta signaling plays a role in pathogenesis. The recent discovery that mutations in the vascular smooth muscle cell (SMC)-specific beta-myosin (MYH11) and alpha-actin (ACTA2) can also cause this disorder has focused attention on the importance of the maintenance of SMC contractile function in preserving aortic structure and preventing TAAD.


Journal of Clinical Investigation | 2009

An adventitial IL-6/MCP1 amplification loop accelerates macrophage-mediated vascular inflammation leading to aortic dissection in mice

Brian C. Tieu; Chang Lee; Hong Sun; Wanda S. LeJeune; Adrian Recinos; Xiaoxi Ju; Heidi Spratt; Dong Chuan Guo; Dianna M. Milewicz; Ronald G. Tilton; Allan R. Brasier

Vascular inflammation contributes to cardiovascular diseases such as aortic aneurysm and dissection. However, the precise inflammatory pathways involved have not been clearly defined. We have shown here that subcutaneous infusion of Ang II, a vasopressor known to promote vascular inflammation, into older C57BL/6J mice induced aortic production of the proinflammatory cytokine IL-6 and the monocyte chemoattractant MCP-1. Production of these factors occurred predominantly in the tunica adventitia, along with macrophage recruitment, adventitial expansion, and development of thoracic and suprarenal aortic dissections. In contrast, a reduced incidence of dissections was observed after Ang II infusion into mice lacking either IL-6 or the MCP-1 receptor CCR2. Further analysis revealed that Ang II induced CCR2+CD14hiCD11bhiF4/80- macrophage accumulation selectively in aortic dissections and not in aortas from Il6-/- mice. Adoptive transfer of Ccr2+/+ monocytes into Ccr2-/- mice resulted in selective monocyte uptake into the ascending and suprarenal aorta in regions of enhanced ROS stress, with restoration of IL-6 secretion and increased incidence of dissection. In vitro, coculture of monocytes and aortic adventitial fibroblasts produced MCP-1- and IL-6-enriched conditioned medium that promoted differentiation of monocytes into macrophages, induced CD14 and CD11b upregulation, and induced MCP-1 and MMP-9 expression. These results suggest that leukocyte-fibroblast interactions in the aortic adventitia potentiate IL-6 production, inducing local monocyte recruitment and activation, thereby promoting MCP-1 secretion, vascular inflammation, ECM remodeling, and aortic destabilization.


Circulation | 2001

Familial Thoracic Aortic Aneurysms and Dissections Genetic Heterogeneity With a Major Locus Mapping to 5q13-14

Dong Chuan Guo; Sumera N. Hasham; Shao Qing Kuang; Carl J. Vaughan; Eric Boerwinkle; Hua Chen; Dianne N. Abuelo; Harry C. Dietz; Craig T. Basson; Sanjay Shete; Dianna M. Milewicz

Background—Aneurysms and dissections affecting the ascending aorta are associated primarily with degeneration of the aortic media, called medial necrosis. Families identified with dominant inheritance of thoracic aortic aneurysms and dissections (TAA/dissections) indicate that single gene mutations can cause medial necrosis in the absence of an associated syndrome. Methods and Results—Fifteen families were identified with multiple members with TAAs/dissections. DNA from affected members from 2 of the families was used for a genome-wide search for the location of the defective gene by use of random polymorphic markers. The data were analyzed by the affected-pedigree-member method of linkage analysis. This analysis revealed 3 chromosomal loci with multiple markers demonstrating evidence of linkage to the phenotype. Linkage analysis using further markers in these regions and DNA from 15 families confirmed linkage of some of the families to 5q13-14. Genetic heterogeneity for the condition was confirmed by a heterogeneity test. Data from 9 families with the highest conditional probability of being linked to 5q were used to calculate the pairwise and multipoint logarithm of the odds (LOD) scores, with a maximum LOD of 4.74, with no recombination being obtained for the marker D5S2029. In 6 families, the phenotype was not linked to the 5q locus. Conclusions—A major locus for familial TAAs and dissections maps to 5q13-14, with the majority (9 of 15) of the families identified demonstrating evidence of linkage to this locus. The condition is genetically heterogeneous, with 6 families not demonstrating evidence of linkage to any loci previously associated with aneurysm formation.


Nature Genetics | 2012

TGFB2 mutations cause familial thoracic aortic aneurysms and dissections associated with mild systemic features of Marfan syndrome

Catherine Boileau; Dong Chuan Guo; Nadine Hanna; Ellen S. Regalado; Delphine Detaint; Limin Gong; Mathilde Varret; Siddharth K. Prakash; Alexander H. Li; Hyacintha D'Indy; Alan C. Braverman; Bernard Grandchamp; Callie S. Kwartler; Laurent Gouya; Regie Lyn P. Santos-Cortez; Marianne Abifadel; Suzanne M. Leal; Christine Muti; Jay Shendure; Marie Sylvie Gross; Mark J. Rieder; Alec Vahanian; Deborah A. Nickerson; Jean Michel; Guillaume Jondeau; Dianna M. Milewicz

A predisposition for thoracic aortic aneurysms leading to acute aortic dissections can be inherited in families in an autosomal dominant manner. Genome-wide linkage analysis of two large unrelated families with thoracic aortic disease followed by whole-exome sequencing of affected relatives identified causative mutations in TGFB2. These mutations—a frameshift mutation in exon 6 and a nonsense mutation in exon 4—segregated with disease with a combined logarithm of odds (LOD) score of 7.7. Sanger sequencing of 276 probands from families with inherited thoracic aortic disease identified 2 additional TGFB2 mutations. TGFB2 encodes transforming growth factor (TGF)-β2, and the mutations are predicted to cause haploinsufficiency for TGFB2; however, aortic tissue from cases paradoxically shows increased TGF-β2 expression and immunostaining. Thus, haploinsufficiency for TGFB2 predisposes to thoracic aortic disease, suggesting that the initial pathway driving disease is decreased cellular TGF-β2 levels leading to a secondary increase in TGF-β2 production in the diseased aorta.


American Journal of Human Genetics | 2010

Mutations in Myosin Light Chain Kinase Cause Familial Aortic Dissections

Li Wang; Dong Chuan Guo; Jiumei Cao; Limin Gong; Kristine E. Kamm; Ellen S. Regalado; Li Li; Sanjay Shete; Wei Qi He; Min Sheng Zhu; Stephan Offermanns; Dawna Gilchrist; John A. Elefteriades; James T. Stull; Dianna M. Milewicz

Mutations in smooth muscle cell (SMC)-specific isoforms of α-actin and β-myosin heavy chain, two major components of the SMC contractile unit, cause familial thoracic aortic aneurysms leading to acute aortic dissections (FTAAD). To investigate whether mutations in the kinase that controls SMC contractile function (myosin light chain kinase [MYLK]) cause FTAAD, we sequenced MYLK by using DNA from 193 affected probands from unrelated FTAAD families. One nonsense and four missense variants were identified in MYLK and were not present in matched controls. Two variants, p.R1480X (c.4438C>T) and p.S1759P (c.5275T>C), segregated with aortic dissections in two families with a maximum LOD score of 2.1, providing evidence of linkage of these rare variants to the disease (p = 0.0009). Both families demonstrated a similar phenotype characterized by presentation with an acute aortic dissection with little to no enlargement of the aorta. The p.R1480X mutation leads to a truncated protein lacking the kinase and calmodulin binding domains, and p.S1759P alters amino acids in the α-helix of the calmodulin binding sequence, which disrupts kinase binding to calmodulin and reduces kinase activity in vitro. Furthermore, mice with SMC-specific knockdown of Mylk demonstrate altered gene expression and pathology consistent with medial degeneration of the aorta. Thus, genetic and functional studies support the conclusion that heterozygous loss-of-function mutations in MYLK are associated with aortic dissections.


Circulation Research | 2011

Exome Sequencing Identifies SMAD3 Mutations as a Cause of Familial Thoracic Aortic Aneurysm and Dissection With Intracranial and Other Arterial Aneurysms

Ellen S. Regalado; Dong Chuan Guo; Carlos Villamizar; Nili Avidan; Dawna Gilchrist; Barbara McGillivray; Lorne A. Clarke; Francois P. Bernier; Regie Lyn P. Santos-Cortez; Suzanne M. Leal; Aida M. Bertoli-Avella; Jay Shendure; Mark J. Rieder; Deborah A. Nickerson; Dianna M. Milewicz

Rationale: Thoracic aortic aneurysms leading to acute aortic dissections (TAAD) can be inherited in families in an autosomal dominant manner. As part of the spectrum of clinical heterogeneity of familial TAAD, we recently described families with multiple members that had TAAD and intracranial aneurysms or TAAD and intracranial and abdominal aortic aneurysms inherited in an autosomal dominant manner. Objective: To identify the causative mutation in a large family with autosomal dominant inheritance of TAAD with intracranial and abdominal aortic aneurysms by performing exome sequencing of 2 distantly related individuals with TAAD and identifying shared rare variants. Methods and Results: A novel frame shift mutation, p. N218fs (c.652delA), was identified in the SMAD3 gene and segregated with the vascular diseases in this family with a logarithm of odds score of 2.52. Sequencing of 181 probands with familial TAAD identified 3 additional SMAD3 mutations in 4 families, p.R279K (c.836G>A), p.E239K (c.715G>A), and p.A112V (c.235C>T), resulting in a combined logarithm of odds score of 5.21. These 4 mutations were notably absent in 2300 control exomes. SMAD3 mutations were recently described in patients with aneurysms osteoarthritis syndrome and some of the features of this syndrome were identified in individuals in our cohort, but these features were notably absent in many SMAD3 mutation carriers. Conclusions: SMAD3 mutations are responsible for 2% of familial TAAD. Mutations are found in families with TAAD alone, along with families with TAAD, intracranial aneurysms, abdominal aortic and bilateral iliac aneurysms segregating in an autosomal dominant manner.


Circulation | 2001

Identification of a Chromosome 11q23.2-q24 Locus for Familial Aortic Aneurysm Disease, a Genetically Heterogeneous Disorder

Carl J. Vaughan; Mairead Casey; Jie He; Mark Veugelers; Kiersten A. Henderson; Dong Chuan Guo; Robert Campagna; Mary J. Roman; Dianna M. Milewicz; Richard B. Devereux; Craig T. Basson

Background—Aortic aneurysms cause significant mortality, and >20% relate to hereditary disorders. Familial aortic aneurysm (FAA) has been described in such conditions as the Marfan and Ehlers-Danlos type IV syndromes, due to defects in the fibrillin-1 and type III procollagen genes, respectively. Other gene defects that cause isolated aneurysms, however, have not thus far been described. Methods and Results—We studied 3 families affected by FAA. No family met the diagnostic criteria for either Marfan or Ehlers-Danlos syndrome. Echocardiography defined involvement of both the thoracic and abdominal aorta. In family ANA, candidate gene analysis excluded linkage to loci associated with aneurysm formation, including fibrillin-1, fibrillin-2, and type III procollagen, and chromosome 3p24.2-p25. Genome-wide linkage analysis identified a 2.3-cM FAA locus (FAA1) on chromosome 11q23.3-q24 with a maximum multipoint logarithm of the odds score of 4.4. In family ANB, FAA was linked to fibrillin-1. In family ANF, however, FAA was not linked to any locus previously associated with aneurysm formation, including fibrillin-1 and FAA1. Conclusions—FAA disease is genetically heterogeneous. We have identified a novel FAA locus at chromosome 11q23.3-q24, a critical step toward elucidating 1 gene defect responsible for aortic dilatation. Future characterization of the FAA1 gene will enhance our ability to achieve presymptomatic diagnosis of aortic aneurysms and will define molecular mechanisms to target therapeutics.


The Journal of Infectious Diseases | 2003

Genetic Susceptibility to Enteroaggregative Escherichia coli Diarrhea: Polymorphism in the Interleukin-8 Promotor Region

Zhi Dong Jiang; Pablo C. Okhuysen; Dong Chuan Guo; Rumin He; Terri M. King; Herbert L. DuPont; Dianna M. Milewicz

Enteroaggregative Escherichia coli (EAEC) infection can be identified in 26% of travelers with diarrhea and is associated with fecal interleukin (IL)-8 production. We hypothesized that single-nucleotide polymorphisms (SNPs) in the IL-8 gene are associated with EAEC-related symptoms. Fecal IL-8 production and IL-8 SNPs at 5 loci were identified in 69 US students who remained in Mexico for 5 weeks; 23 subjects had EAEC-associated diarrhea, 7 were asymptomatic EAEC carriers, 22 had nonspecific diarrhea, and 17 were asymptomatic without an enteropathogen. The chances of having EAEC-associated diarrhea were significantly increased among those with the AA genotype at the -251 position (odds ratio [OR], 208.51; 95% confidence interval [CI], 28.5-1525.36) and among those with AT genotype (OR, 14.3; 95% CI, 1.98-105.74), compared with those with the TT genotype at the -251 position. Among subjects with EAEC-associated diarrhea, the AA genotype at the -251 position produced greater concentrations of fecal IL-8 than those with the AT or TT genotype (P=.0053). In the present study, the AA genotype at the -251 position was associated with the occurrence of EAEC-associated diarrhea and increased levels of fecal IL-8.


Journal of Dental Research | 2002

A Novel Mutation in Human PAX9 Causes Molar Oligodontia

S. A. Frazier-Bowers; Dong Chuan Guo; A. I Cavender; L. Xue; B. Evans; Terri M. King; Dianna M. Milewicz; Rena N. D'Souza

Experimental and animal studies, as well as genetic mutations in man, have indicated that the development of dentition is under the control of several genes. So far, mutations in MSX1 and PAX9 have been associated with dominantly inherited forms of human tooth agenesis that mainly involve posterior teeth. We identified a large kindred with several individuals affected with molar oligodontia that was transmitted as an isolated autosomal-dominant trait. Two-point linkage analysis using DNA from the family and polymorphic marker D14S288 in chromosome 14q12 produced a maximum lod score of 2.29 at theta = 0.1. Direct sequencing of exons 2 to 4 of PAX9 revealed a cytosine insertion mutation at nucleotide 793, leading to a premature termination of translation at aa 315. Our results support the conclusion that molar oligodontia is due to allelic heterogeneity in PAX9, and these data further corroborate the role of PAX9 as an important regulator of molar development.

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Dianna M. Milewicz

University of Texas Health Science Center at Houston

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Ellen S. Regalado

University of Texas Health Science Center at Houston

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Anthony L. Estrera

University of Texas Health Science Center at Houston

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Hazim J. Safi

University of Texas Health Science Center at Houston

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Hariyadarshi Pannu

University of Texas Health Science Center at Houston

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Sanjay Shete

University of Texas MD Anderson Cancer Center

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Siddharth K. Prakash

University of Texas Health Science Center at Houston

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Suzanne M. Leal

Baylor College of Medicine

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Christina L. Papke

University of Texas Health Science Center at Houston

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