Zhongshu Tang
Sun Yat-sen University
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Publication
Featured researches published by Zhongshu Tang.
Proceedings of the National Academy of Sciences of the United States of America | 2009
Fan Zhang; Zhongshu Tang; Xu Hou; Johan Lennartsson; Yang Li; Alexander W. Koch; Pierre Scotney; Chunsik Lee; Pachiappan Arjunan; Lijin Dong; Anil Kumar; Tuomas T. Rissanen; Bin Wang; Nobuo Nagai; Pierre Fons; Robert N. Fariss; Yongqing Zhang; Eric F. Wawrousek; Ginger Tansey; James Raber; Guo-Hua Fong; Hao Ding; David A. Greenberg; Kevin G. Becker; Jean-Marc Herbert; Andrew D. Nash; Seppo Ylä-Herttuala; Yihai Cao; Ryan J. Watts; Xuri Li
VEGF-B, a homolog of VEGF discovered a long time ago, has not been considered an important target in antiangiogenic therapy. Instead, it has received little attention from the field. In this study, using different animal models and multiple types of vascular cells, we revealed that although VEGF-B is dispensable for blood vessel growth, it is critical for their survival. Importantly, the survival effect of VEGF-B is not only on vascular endothelial cells, but also on pericytes, smooth muscle cells, and vascular stem/progenitor cells. In vivo, VEGF-B targeting inhibited both choroidal and retinal neovascularization. Mechanistically, we found that the vascular survival effect of VEGF-B is achieved by regulating the expression of many vascular prosurvival genes via both NP-1 and VEGFR-1. Our work thus indicates that the function of VEGF-B in the vascular system is to act as a “survival,” rather than an “angiogenic” factor and that VEGF-B inhibition may offer new therapeutic opportunities to treat neovascular diseases.
Journal of Clinical Investigation | 2008
Yang Li; Fan Zhang; Nobuo Nagai; Zhongshu Tang; Shuihua Zhang; Pierre Scotney; Johan Lennartsson; Chaoyong Zhu; Yi Qu; Changge Fang; Jianyuan Hua; Osamu Matsuo; Guo-Hua Fong; Hao Ding; Yihai Cao; Kevin G. Becker; Andrew D. Nash; Carl-Henrik Heldin; Xuri Li
Despite its early discovery and high sequence homology to the other VEGF family members, the biological functions of VEGF-B remain poorly understood. We revealed here a novel function for VEGF-B as a potent inhibitor of apoptosis. Using gene expression profiling of mouse primary aortic smooth muscle cells, and confirming the results by real-time PCR using mouse and rat cell lines, we showed that VEGF-B inhibited the expression of genes encoding the proapoptotic BH3-only proteins and other apoptosis- and cell death-related proteins, including p53 and members of the caspase family, via activation of VEGFR-1. Consistent with this, VEGF-B treatment rescued neurons from apoptosis in the retina and brain in mouse models of ocular neurodegenerative disorders and stroke, respectively. Interestingly, VEGF-B treatment at the dose effective for neuronal survival did not cause retinal neovascularization, suggesting that VEGF-B is the first member of the VEGF family that has a potent antiapoptotic effect while lacking a general angiogenic activity. These findings indicate that VEGF-B may potentially offer a new therapeutic option for the treatment of neurodegenerative diseases.
Circulation Research | 2012
Harald Langer; Eun Young Choi; Hong Zhou; Rebecca Schleicher; Kyoung-Jin Chung; Zhongshu Tang; Kerstin Göbel; Khalil Bdeir; Antonios Chatzigeorgiou; Connie Hoi Yee Wong; Sumeena Bhatia; Michael J. Kruhlak; John Rose; James Burns; Kenneth E. Hill; Yongqing Zhang; Elin Lehrmann; Kevin G. Becker; Yunmei Wang; Daniel I. Simon; Bernhard Nieswandt; John D. Lambris; Xuri Li; Sven G. Meuth; Paul Kubes; Triantafyllos Chavakis
Rationale: Multiple sclerosis (MS) and its mouse model, experimental autoimmune encephalomyelitis (EAE), are inflammatory disorders of the central nervous system (CNS). The function of platelets in inflammatory and autoimmune pathologies is thus far poorly defined. Objective: We addressed the role of platelets in mediating CNS inflammation in EAE. Methods and Results: We found that platelets were present in human MS lesions as well as in the CNS of mice subjected to EAE but not in the CNS from control nondiseased mice. Platelet depletion at the effector-inflammatory phase of EAE in mice resulted in significantly ameliorated disease development and progression. EAE suppression on platelet depletion was associated with reduced recruitment of leukocytes to the inflamed CNS, as assessed by intravital microscopy, and with a blunted inflammatory response. The platelet-specific receptor glycoprotein Ib&agr; (GPIb&agr;) promotes both platelet adhesion and inflammatory actions of platelets and targeting of GPIb&agr; attenuated EAE in mice. Moreover, targeting another platelet adhesion receptor, glycoprotein IIb/IIIa (GPIIb/IIIa), also reduced EAE severity in mice. Conclusions: Platelets contribute to the pathogenesis of EAE by promoting CNS inflammation. Targeting platelets may therefore represent an important new therapeutic approach for MS treatment.
Journal of Experimental Medicine | 2010
Zhongshu Tang; Pachiappan Arjunan; Chunsik Lee; Yang Li; Anil Kumar; Xu Hou; Bin Wang; Piotr Wardega; Fan Zhang; Lijin Dong; Yongqing Zhang; Shi-Zhuang Zhang; Hao Ding; Robert N. Fariss; Kevin G. Becker; Johan Lennartsson; Nobuo Nagai; Yihai Cao; Xuri Li
Platelet-derived growth factor CC (PDGF-CC) is the third member of the PDGF family discovered after more than two decades of studies on the original members of the family, PDGF-AA and PDGF-BB. The biological function of PDGF-CC remains largely to be explored. We report a novel finding that PDGF-CC is a potent neuroprotective factor that acts by modulating glycogen synthase kinase 3β (GSK3β) activity. In several different animal models of neuronal injury, such as axotomy-induced neuronal death, neurotoxin-induced neuronal injury, 6-hydroxydopamine–induced Parkinson’s dopaminergic neuronal death, and ischemia-induced stroke, PDGF-CC protein or gene delivery protected different types of neurons from apoptosis in both the retina and brain. On the other hand, loss-of-function assays using PDGF-C null mice, neutralizing antibody, or short hairpin RNA showed that PDGF-CC deficiency/inhibition exacerbated neuronal death in different neuronal tissues in vivo. Mechanistically, we revealed that the neuroprotective effect of PDGF-CC was achieved by regulating GSK3β phosphorylation and expression. Our data demonstrate that PDGF-CC is critically required for neuronal survival and may potentially be used to treat neurodegenerative diseases. Inhibition of the PDGF-CC–PDGF receptor pathway for different clinical purposes should be conducted with caution to preserve normal neuronal functions.
Proceedings of the National Academy of Sciences of the United States of America | 2010
Xu Hou; Anil Kumar; Chunsik Lee; Bin Wang; Pachiappan Arjunan; Lijin Dong; Arvydas Maminishkis; Zhongshu Tang; Yang Li; Fan Zhang; Shi-Zhuang Zhang; Piotr Wardega; Sagarika Chakrabarty; Baoying Liu; Zhijian Wu; Peter Colosi; Robert N. Fariss; Johan Lennartsson; Robert B. Nussenblatt; J. Silvio Gutkind; Yihai Cao; Xuri Li
The importance of identifying VEGF-independent pathways in pathological angiogenesis is increasingly recognized as a result of the emerging drug resistance to anti-VEGF therapies. PDGF-CC is the third member of the PDGF family discovered after more than two decades of studies on PDGF-AA and PDGF-BB. The biological function of PDGF-CC and the underlying cellular and molecular mechanisms remain largely unexplored. Here, using different animal models, we report that PDGF-CC inhibition by neutralizing antibody, shRNA, or genetic deletion suppressed both choroidal and retinal neovascularization. Importantly, we revealed that PDGF-CC targeting acted not only on multiple cell types important for pathological angiogenesis, such as vascular mural and endothelial cells, macrophages, choroidal fibroblasts and retinal pigment epithelial cells, but also on the expression of other important angiogenic genes, such as PDGF-BB and PDGF receptors. At a molecular level, we found that PDGF-CC regulated glycogen synthase kinase (GSK)–3β phosphorylation and expression both in vitro and in vivo. Activation of GSK3β impaired PDGF-CC–induced angiogenesis, and inhibition of GSK3β abolished the antiangiogenic effect of PDGF-CC blockade. Thus, we identified PDGF-CC as an important candidate target gene for antiangiogenic therapy, and PDGF-CC inhibition may be of therapeutic value in treating neovascular diseases.
Cell Adhesion & Migration | 2009
Xuri Li; Chunsik Lee; Zhongshu Tang; Fan Zhang; Pachiappan Arjunan; Yang Li; Xu Hou; Anil Kumar; Lijin Dong
Despite its early discovery and high sequence homology to the other VEGF family members, the biological function of VEGF-B remained debatable for a long time, and VEGF-B has received little attention from the field thus far. Recently, we and others have found that (1) VEGF-B is a potent survival factor for different types of cells by inhibiting apoptosis via suppressing the expression of BH3-only protein and other apoptotic/cell death-related genes. (2) VEGF-B has a negligible role in inducing blood vessel growth in most organs. Instead, it is critically required for blood vessel survival. VEGF-B targeting inhibited pathological angiogenesis by abolishing blood vessel survival in different animal models. (3) Using different types of neuro-injury and neurodegenerative disease models, VEGF-B treatment protected endangered neurons from apoptosis without inducing undesired blood vessel growth or permeability. Thus, VEGF-B is the first member of the VEGF family that has a potent survival/anti-apoptotic effect, while lacking a general angiogenic activity. Our work thus advocates that the major function of VEGF-B is to act as a “survival”, rather than an “angiogenic” factor, and implicates a therapeutic potential of VEGF-B in treating different types of vascular and neurodegenerative diseases.
Trends in Molecular Medicine | 2012
Xuri Li; Anil Kumar; Fan Zhang; Chunsik Lee; Zhongshu Tang
No other member of the VEGF (vascular endothelial growth factor) family has been as mysterious as VEGF-B. Notwithstanding its name, VEGF-B can hardly be regarded as a growth factor because growth occurs fairly normally in Vegf-b deficient mice. Moreover, VEGF-B is barely angiogenic under most conditions, although it was expected to be an angiogenic factor for a long time. Under certain conditions, VEGF-B has been shown to be involved in blood vessel growth. Under other conditions, however, VEGF-B can act to inhibit tumor growth and angiogenesis. Given these contradictory findings, the biological function of VEGF-B appears enigmatic. In this review, we summarize recent advances in VEGF-B biology and discuss its multifaceted roles, the underlying mechanisms, and the potential therapeutic implications.
Journal of Biological Chemistry | 2010
Anil Kumar; Xu Hou; Chunsik Lee; Yang Li; Arvydas Maminishkis; Zhongshu Tang; Fan Zhang; Harald Langer; Pachiappan Arjunan; Lijin Dong; Zhijian Wu; Linda Yijia Zhu; Lianchun Wang; Wang Min; Peter Colosi; Triantafyllos Chavakis; Xuri Li
Platelet-derived growth factor-DD (PDGF-DD) is a recently discovered member of the PDGF family. The role of PDGF-DD in pathological angiogenesis and the underlying cellular and molecular mechanisms remain largely unexplored. In this study, using different animal models, we showed that PDGF-DD expression was up-regulated during pathological angiogenesis, and inhibition of PDGF-DD suppressed both choroidal and retinal neovascularization. We also demonstrated a novel mechanism mediating the function of PDGF-DD. PDGF-DD induced glycogen synthase kinase-3β (GSK3β) Ser9 phosphorylation and Tyr216 dephosphorylation in vitro and in vivo, leading to increased cell survival. Consistently, GSK3β activity was required for the antiangiogenic effect of PDGF-DD targeting. Moreover, PDGF-DD regulated the expression of GSK3β and many other genes important for angiogenesis and apoptosis. Thus, we identified PDGF-DD as an important target gene for antiangiogenic therapy due to its pleiotropic effects on vascular and non-vascular cells. PDGF-DD inhibition may offer new therapeutic options to treat neovascular diseases.
Trends in Molecular Medicine | 2013
Chunsik Lee; Fan Zhang; Zhongshu Tang; Yizhi Liu; Xuri Li
The importance of neurovascular crosstalk in development, normal physiology, and pathologies is increasingly being recognized. Although vascular endothelial growth factor (VEGF), a prototypic regulator of neurovascular interaction, has been studied intensively, defining other important regulators in this process is warranted. Recent studies have shown that platelet-derived growth factor C (PDGF-C) is both angiogenic and a neuronal survival factor, and it appears to be an important component of neurovascular crosstalk. Importantly, the expression pattern and functional properties of PDGF-C and its receptors differ from those of VEGF, and thus the PDGF-C-mediated neurovascular interaction may represent a new paradigm of neurovascular crosstalk.
Cell Reports | 2012
Fan Zhang; Yang Li; Zhongshu Tang; Anil Kumar; Chunsik Lee; Liping Zhang; Chaoyong Zhu; Anne Klotzsche-von Ameln; Bin Wang; Zhiqin Gao; Shi-Zhuang Zhang; Harald Langer; Xu Hou; Lasse Jensen; Wenxin Ma; Wai T. Wong; Triantafyllos Chavakis; Yizhi Liu; Yihai Cao; Xuri Li
The p53 upregulated modulator of apoptosis (PUMA) is known as an essential apoptosis inducer. Here, we report the seemingly paradoxical finding that PUMA is a proangiogenic factor critically required for the proliferation and survival of vascular and microglia cells. Strikingly, Puma deficiency by genetic deletion or small hairpin RNA knockdown inhibited developmental and pathological angiogenesis and reduced microglia numbers in vivo, whereas Puma gene delivery increased angiogenesis and cell survival. Mechanistically, we revealed that PUMA plays a critical role in regulating autophagy by modulating Erk activation and intracellular calcium level. Our findings revealed an unexpected function of PUMA in promoting angiogenesis and warrant more careful investigations into the therapeutic potential of PUMA in treating cancer and degenerative diseases.