Yanyan Peng
Cincinnati Children's Hospital Medical Center
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Publication
Featured researches published by Yanyan Peng.
Nature Genetics | 2015
Alexander J. Abrams; Robert B. Hufnagel; Adriana P. Rebelo; Claudia Zanna; Neville Patel; Michael Gonzalez; Ion J. Campeanu; Laurie B. Griffin; Saskia Groenewald; Alleene V. Strickland; Feifei Tao; Fiorella Speziani; Lisa Abreu; Rebecca Schüle; Leonardo Caporali; Chiara La Morgia; Alessandra Maresca; Rocco Liguori; Raffaele Lodi; Zubair M. Ahmed; Kristen L. Sund; Xinjian Wang; Laura A. Krueger; Yanyan Peng; Carlos E. Prada; Cynthia A. Prows; Elizabeth K. Schorry; Anthony Antonellis; Holly H. Zimmerman; Omar A. Abdul-Rahman
Dominant optic atrophy (DOA) and axonal peripheral neuropathy (Charcot-Marie-Tooth type 2, or CMT2) are hereditary neurodegenerative disorders most commonly caused by mutations in the canonical mitochondrial fusion genes OPA1 and MFN2, respectively. In yeast, homologs of OPA1 (Mgm1) and MFN2 (Fzo1) work in concert with Ugo1, for which no human equivalent has been identified thus far. By whole-exome sequencing of patients with optic atrophy and CMT2, we identified four families with recessive mutations in SLC25A46. We demonstrate that SLC25A46, like Ugo1, is a modified carrier protein that has been recruited to the outer mitochondrial membrane and interacts with the inner membrane remodeling protein mitofilin (Fcj1). Loss of function in cultured cells and in zebrafish unexpectedly leads to increased mitochondrial connectivity, while severely affecting the development and maintenance of neurons in the fish. The discovery of SLC25A46 strengthens the genetic overlap between optic atrophy and CMT2 while exemplifying a new class of modified solute transporters linked to mitochondrial dynamics.
Human Pathology | 2016
Nancy Leslie; Xinjian Wang; Yanyan Peng; C. Alexander Valencia; Zaza Khuchua; Jessica Hata; David P. Witte; Taosheng Huang; Kevin E. Bove
Complex I deficiency causes Leigh syndrome, fatal infant lactic acidosis, and neonatal cardiomyopathy. Mutations in more than 100 nuclear DNA and mitochondrial DNA genes miscode for complex I subunits or assembly factors. ACAD9 is an acyl-CoA dehydrogenase with a novel function in assembly of complex I; biallelic mutations cause progressive encephalomyopathy, recurrent Reye syndrome, and fatal cardiomyopathy. We describe the first autopsy in fatal neonatal lethal lactic acidosis due to mutations in ACAD9 that reduced complex I activity. We identified mitochondrial hyperplasia in cardiac myocytes, diaphragm muscle, and liver and renal tubules in formalin-fixed, paraffin-embedded tissue using immunohistochemistry for mitochondrial antigens. Whole-exome sequencing revealed compound heterozygous variants in the ACAD9 gene: c.187G>T (p.E63*) and c.941T>C (p.L314P). The nonsense mutation causes late infantile lethality; the missense variant is novel. Autopsy-derived fibroblasts had reduced complex I activity (53% of control) with normal activity in complexes II to IV, similar to reported cases of ACAD9 deficiency.
Human Molecular Genetics | 2016
Benjamin Liou; Yanyan Peng; Ronghua Li; Venette Inskeep; Wujuan Zhang; Brian Quinn; Nupur Dasgupta; Rachel Blackwood; Kenneth D. R. Setchell; Sheila M. Fleming; Gregory A. Grabowski; John Marshall; Ying Sun
Neuronopathic Gaucher disease (nGD) manifests as severe neurological symptoms in patients with no effective treatment available. Ryanodine receptors (Ryrs) are a family of calcium release channels on intracellular stores. The goal of this study is to determine if Ryrs are potential targets for nGD treatment. A nGD cell model (CBE-N2a) was created by inhibiting acid β-glucosidase (GCase) in N2a cells with conduritol B epoxide (CBE). Enhanced cytosolic calcium in CBE-N2a cells was blocked by either ryanodine or dantrolene, antagonists of Ryrs and by Genz-161, a glucosylceramide synthase inhibitor, suggesting substrate-mediated ER-calcium efflux occurs through ryanodine receptors. In the brain of a nGD (4L;C*) mouse model, expression of Ryrs was normal at 13 days of age, but significantly decreased below the wild type level in end-stage 4L;C* brains at 40 days. Treatment with dantrolene in 4L;C* mice starting at postnatal day 5 delayed neurological pathology and prolonged survival. Compared to untreated 4L;C* mice, dantrolene treatment significantly improved gait, reduced LC3-II levels, improved mitochondrial ATP production and reduced inflammation in the brain. Dantrolene treatment partially normalized Ryr expression and its potential regulators, CAMK IV and calmodulin. Furthermore, dantrolene treatment increased residual mutant GCase activity in 4L;C* brains. These data demonstrate that modulating Ryrs has neuroprotective effects in nGD through mechanisms that protect the mitochondria, autophagy, Ryr expression and enhance GCase activity. This study suggests that calcium signalling stabilization, e.g. with dantrolene, could be a potential disease modifying therapy for nGD.
Human Molecular Genetics | 2017
Zhuo Li; Yanyan Peng; Robert B. Hufnagel; Yueh-Chiang Hu; Chuntao Zhao; Luis F. Queme; Zaza Khuchua; Ashley Driver; Fei Dong; Q. Richard Lu; Diana M. Lindquist; Michael P. Jankowski; Rolf W. Stottmann; Winston W.-Y. Kao; Taosheng Huang
Recently, we identified biallelic mutations of SLC25A46 in patients with multiple neuropathies. Functional studies revealed that SLC25A46 may play an important role in mitochondrial dynamics by mediating mitochondrial fission. However, the cellular basis and pathogenic mechanism of the SLC25A46-related neuropathies are not fully understood. Thus, we generated a Slc25a46 knock-out mouse model. Mice lacking SLC25A46 displayed severe ataxia, mainly caused by degeneration of Purkinje cells. Increased numbers of small, unmyelinated and degenerated optic nerves as well as loss of retinal ganglion cells indicated optic atrophy. Compound muscle action potentials in peripheral nerves showed peripheral neuropathy associated with degeneration and demyelination in axons. Mutant cerebellar neurons have large mitochondria, which exhibit abnormal distribution and transport. Biochemically mutant mice showed impaired electron transport chain activity and accumulated autophagy markers. Our results suggest that loss of SLC25A46 causes degeneration in neurons by affecting mitochondrial dynamics and energy production.
Human Molecular Genetics | 2017
Yanyan Peng; Deepali N. Shinde; C. Alexander Valencia; Jun-Song Mo; Jill A. Rosenfeld; Megan Truitt Cho; Adam Chamberlin; Zhuo Li; Jie Liu; Baoheng Gui; Rachel Brockhage; Alice Basinger; Brenda Alvarez-Leon; Peter T. Heydemann; Pilar L. Magoulas; Andrea M. Lewis; Fernando Scaglia; Solange Gril; Shuk Ching Chong; Matthew Bower; Kristin G. Monaghan; Rebecca Willaert; Maria-Renee Plona; Rich Dineen; Francisca Milan; George Hoganson; Zöe Powis; Katherine L. Helbig; Jennifer Keller-Ramey; Belinda S. Harris
Abstract Iron–sulfur (Fe-S) clusters are ubiquitous cofactors essential to various cellular processes, including mitochondrial respiration, DNA repair, and iron homeostasis. A steadily increasing number of disorders are being associated with disrupted biogenesis of Fe–S clusters. Here, we conducted whole-exome sequencing of patients with optic atrophy and other neurological signs of mitochondriopathy and identified 17 individuals from 13 unrelated families with recessive mutations in FDXR, encoding the mitochondrial membrane-associated flavoprotein ferrodoxin reductase required for electron transport from NADPH to cytochrome P450. In vitro enzymatic assays in patient fibroblast cells showed deficient ferredoxin NADP reductase activity and mitochondrial dysfunction evidenced by low oxygen consumption rates (OCRs), complex activities, ATP production and increased reactive oxygen species (ROS). Such defects were rescued by overexpression of wild-type FDXR. Moreover, we found that mice carrying a spontaneous mutation allelic to the most common mutation found in patients displayed progressive gait abnormalities and vision loss, in addition to biochemical defects consistent with the major clinical features of the disease. Taken together, these data provide the first demonstration that germline, hypomorphic mutations in FDXR cause a novel mitochondriopathy and optic atrophy in humans.
JCI insight | 2018
Joseph D. Sherrill; Kiran Kc; Xinjian Wang; Ting Wen; Adam Chamberlin; Emily M. Stucke; Margaret H. Collins; J. Pablo Abonia; Yanyan Peng; Qiang Wu; Philip E. Putnam; Phillip Dexheimer; Bruce J. Aronow; Leah C. Kottyan; Kenneth M. Kaufman; John B. Harley; Taosheng Huang; Marc E. Rothenberg
Eosinophilic esophagitis (EoE) is an allergic inflammatory esophageal disorder with a complex underlying genetic etiology often associated with other comorbidities. Using whole-exome sequencing (WES) of 63 patients with EoE and 60 unaffected family members and family-based trio analysis, we sought to uncover rare coding variants. WES analysis identified 5 rare, damaging variants in dehydrogenase E1 and transketolase domain-containing 1 (DHTKD1). Rare variant burden analysis revealed an overabundance of putative, potentially damaging DHTKD1 mutations in EoE (P = 0.01). Interestingly, we also identified 7 variants in the DHTKD1 homolog oxoglutarate dehydrogenase-like (OGDHL). Using shRNA-transduced esophageal epithelial cells and/or patient fibroblasts, we further showed that disruption of normal DHTKD1 or OGDHL expression blunts mitochondrial function. Finally, we demonstrated that the loss of DHTKD1 expression increased ROS production and induced the expression of viperin, a gene previously shown to be involved in production of Th2 cytokines in T cells. Viperin had increased expression in esophageal biopsies of EoE patients compared with control individuals and was upregulated by IL-13 in esophageal epithelial cells. These data identify a series of rare genetic variants implicating DHTKD1 and OGDHL in the genetic etiology of EoE and underscore a potential pathogenic role for mitochondrial dysfunction in EoE.
Journal of Human Genetics | 2018
Jesse Slone; Yanyan Peng; Adam Chamberlin; Belinda S. Harris; Julie Kaylor; Marie McDonald; Monica Lemmon; Mays Antonine El-Dairi; Dmitry Tchapyjnikov; Laura A Gonzalez-Krellwitz; Elizabeth A. Sellars; Allyn McConkie-Rosell; Laura G. Reinholdt; Taosheng Huang
Mitochondrial dysfunction lies behind many neurodegenerative disorders, owing largely to the intense energy requirements of most neurons. Such mitochondrial dysfunction may work through a variety of mechanisms, from direct disruption of the electron transport chain to abnormal mitochondrial biogenesis. Recently, we have identified biallelic mutations in the mitochondrial flavoprotein “ferredoxin reductase” (FDXR) gene as a novel cause of mitochondriopathy, peripheral neuropathy, and optic atrophy. In this report, we expand upon those results by describing two new cases of disease-causing FDXR variants in patients with variable severity of phenotypes, including evidence of an inflammatory response in brain autopsy. To investigate the underlying pathogenesis, we examined neurodegeneration in a mouse model. We found that Fdxr mutant mouse brain tissues share pathological changes similar to those seen in patient autopsy material, including increased astrocytes. Furthermore, we show that these abnormalities are associated with increased levels of markers for both neurodegeneration and gliosis, with the latter implying inflammation as a major factor in the pathology of Fdxr mutations. These data provide further insight into the pathogenic mechanism of FDXR-mediated central neuropathy, and suggest an avenue for mechanistic studies that will ultimately inform treatment.
Cancer Discovery | 2018
Yoshihiro Hayashi; Yue Zhang; Asumi Yokota; Xiaomei Yan; Jinqin Liu; Kwangmin Choi; Bing Li; Goro Sashida; Yanyan Peng; Zefeng Xu; Rui Huang; Lulu Zhang; George M. Freudiger; Jingya Wang; Yunzhu Dong; Yile Zhou; Jieyu Wang; Lingyun Wu; Jiachen Bu; Aili Chen; Xinghui Zhao; Xiujuan Sun; Kashish Chetal; Andre Olsson; Miki Watanabe; Lindsey E. Romick-Rosendale; Hironori Harada; Lee-Yung Shih; William Tse; James P. Bridges
Myelodysplastic syndromes (MDS) are heterogeneous hematopoietic disorders that are incurable with conventional therapy. Their incidence is increasing with global population aging. Although many genetic, epigenetic, splicing, and metabolic aberrations have been identified in patients with MDS, their clinical features are quite similar. Here, we show that hypoxia-independent activation of hypoxia-inducible factor 1α (HIF1A) signaling is both necessary and sufficient to induce dysplastic and cytopenic MDS phenotypes. The HIF1A transcriptional signature is generally activated in MDS patient bone marrow stem/progenitors. Major MDS-associated mutations (Dnmt3a, Tet2, Asxl1, Runx1, and Mll1) activate the HIF1A signature. Although inducible activation of HIF1A signaling in hematopoietic cells is sufficient to induce MDS phenotypes, both genetic and chemical inhibition of HIF1A signaling rescues MDS phenotypes in a mouse model of MDS. These findings reveal HIF1A as a central pathobiologic mediator of MDS and as an effective therapeutic target for a broad spectrum of patients with MDS.Significance: We showed that dysregulation of HIF1A signaling could generate the clinically relevant diversity of MDS phenotypes by functioning as a signaling funnel for MDS driver mutations. This could resolve the disconnection between genotypes and phenotypes and provide a new clue as to how a variety of driver mutations cause common MDS phenotypes. Cancer Discov; 8(11); 1438-57. ©2018 AACR. See related commentary by Chen and Steidl, p. 1355 This article is highlighted in the In This Issue feature, p. 1333.
Molecular Genetics and Metabolism | 2018
Yanyan Peng; Benjamin Liou; Venette Inskeep; Rachel Blackwood; Christopher N. Mayhew; Ying Sun
Molecular Genetics and Metabolism | 2018
Ying Sun; Benjamin Liou; Zhengtao Chu; Venette Inskeep; Rachel Blackwood; Yanyan Peng; Harold W. Davis; Xiaoyang Qi