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Dive into the research topics where Hehua Liu is active.

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Featured researches published by Hehua Liu.


Angewandte Chemie | 2017

A DNA Structure Containing AgI‐Mediated G:G and C:C Base Pairs

Hehua Liu; Fusheng Shen; Phensinee Haruehanroengra; Qingqing Yao; Yunshan Cheng; Yiqing Chen; Chun Yang; Jing Zhang; Baixing Wu; Qiang Luo; Ruixue Cui; Jixi Li; Jinbiao Ma; Jia Sheng; Jianhua Gan

Metal-mediated base pairs have been extensively utilized in many research fields, including genetic-code extension, novel therapeutics development, and nanodevice design. Compared to other cations, AgI is more flexible in pairing with natural base pairs. Herein, we present a DNA structure containing two C-AgI -C pairs and the first reported G-AgI -G pair in a short 8mer DNA strand. This structure not only provides detailed insight into these AgI -mediated base-pairing patterns in DNA, but also represents the first nonhelical DNA structure driven by heavy-metal ions, thus further contributing to the structural diversity of DNA. This unique complex structure is highly sequence-dependent, thus implying functional potentials as a new DNA aptamer that can bind and recognize silver ions. These results not only advance our understanding of the interactions between AgI and nucleobases, but also provide a unique structural component for the rational design of new DNA nanodevices.


Nucleic Acids Research | 2016

Flexibility and stabilization of HgII-mediated C:T and T:T base pairs in DNA duplex

Hehua Liu; Chen Cai; Phensinee Haruehanroengra; Qingqing Yao; Yiqing Chen; Chun Yang; Qiang Luo; Baixing Wu; Jixi Li; Jinbiao Ma; Jia Sheng; Jianhua Gan

Abstract Owing to their great potentials in genetic code extension and the development of nucleic acid-based functional nanodevices, DNA duplexes containing HgII-mediated base pairs have been extensively studied during the past 60 years. However, structural basis underlying these base pairs remains poorly understood. Herein, we present five high-resolution crystal structures including one first-time reported C–HgII–T containing duplex, three T–HgII–T containing duplexes and one native duplex containing T–T pair without HgII. Our structures suggest that both C–T and T–T pairs are flexible in interacting with the HgII ion with various binding modes including N3–HgII–N3, N4–HgII–N3, O2–HgII–N3 and N3–HgII–O4. Our studies also reveal that the overall conformations of the C–HgII–T and T–HgII–T pairs are affected by their neighboring residues via the interactions with the solvent molecules or other metal ions, such as SrII. These results provide detailed insights into the interactions between HgII and nucleobases and the structural basis for the rational design of C–HgII–T or T–HgII–T containing DNA nanodevices in the future.


Nucleic Acids Research | 2016

Structural basis for single-stranded RNA recognition and cleavage by C3PO

Jing Zhang; Hehua Liu; Qingqing Yao; Xiang Yu; Yiqing Chen; Ruixue Cui; Baixing Wu; Lina Zheng; Junjun Zuo; Zhen Huang; Jinbiao Ma; Jianhua Gan

Translin and translin-associated factor-x are highly conserved in eukaroytes; they can form heteromeric complexes (known as C3POs) and participate in various nucleic acid metabolism pathways. In humans and Drosophila, C3POs cleave the fragmented siRNA passenger strands and facilitate the activation of RNA-induced silencing complex, the effector complex of RNA interference (RNAi). Here, we report three crystal structures of Nanoarchaeum equitans (Ne) C3PO. The apo-NeC3PO structure adopts an open form and unravels a potential substrates entryway for the first time. The NeC3PO:ssRNA and NeC3PO:ssDNA complexes fold like closed football with the substrates captured at the inner cavities. The NeC3PO:ssRNA structure represents the only catalytic form C3PO complex available to date; with mutagenesis and in vitro cleavage assays, the structure provides critical insights into the substrate binding and the two-cation-assisted catalytic mechanisms that are shared by eukaryotic C3POs. The work presented here further advances our understanding on the RNAi pathway.


Nucleic Acids Research | 2016

Structural insights into RNA duplexes with multiple 2΄-5΄-linkages

Fusheng Shen; Zhipu Luo; Hehua Liu; Rui Wang; Shenglong Zhang; Jianhua Gan; Jia Sheng

Abstract 2΄-5΄-linked RNAs play important roles in many biological systems. In addition, the mixture of 2΄-5΄ and 3΄-5΄ phosphodiester bonds have emerged as a plausible structural element in prebiotic RNAs. Toward our mechanistic studies of RNA folding and structures with heterogeneous backbones, we recently reported two crystal structures of a decamer RNA duplex containing two and six 2΄-5΄-linkages, showing how RNA duplexes adjust the structures to accommodate these non-canonical linkages (Proc. Natl. Acad. Sci. USA, 2014, 111, 3050–3055). Herein, we present two additional high-resolution crystal structures of the same RNA duplex containing four and eight 2΄-5΄-linkages at different positions, providing new insights into the effects of these modifications and a dynamic view of RNA structure changes with increased numbers of 2΄-5΄-linkages in the same duplex. Our results show that the local structural perturbations caused by 2΄-5΄ linkages can be distributed to nearly all the nucleotides with big ranges of changes in different geometry parameters. In addition, hydration pattern and solvation energy analysis indicate less favorable solvent interactions of 2΄-5΄-linkages comparing to the native 3΄-5΄-linkages. This study not only promotes our understanding of RNA backbone flexibility, but also provides a knowledge base for studying the biochemical and prebiotic significance of RNA 2΄-5΄-linkages.


PLOS Biology | 2017

Unique 5′-P recognition and basis for dG:dGTP misincorporation of ASFV DNA polymerase X

Yiqing Chen; Jing Zhang; Hehua Liu; Yanqing Gao; Xuhang Li; Lina Zheng; Ruixue Cui; Qingqing Yao; Liang Rong; Jixi Li; Zhen Huang; Jinbiao Ma; Jianhua Gan

African swine fever virus (ASFV) can cause highly lethal disease in pigs and is becoming a global threat. ASFV DNA Polymerase X (AsfvPolX) is the most distinctive DNA polymerase identified to date; it lacks two DNA-binding domains (the thumb domain and 8-KD domain) conserved in the homologous proteins. AsfvPolX catalyzes the gap-filling reaction during the DNA repair process of the ASFV virus genome; it is highly error prone and plays an important role during the strategic mutagenesis of the viral genome. The structural basis underlying the natural substrate binding and the most frequent dG:dGTP misincorporation of AsfvPolX remain poorly understood. Here, we report eight AsfvPolX complex structures; our structures demonstrate that AsfvPolX has one unique 5′-phosphate (5′-P) binding pocket, which can favor the productive catalytic complex assembly and enhance the dGTP misincorporation efficiency. In combination with mutagenesis and in vitro catalytic assays, our study also reveals the functional roles of the platform His115-Arg127 and the hydrophobic residues Val120 and Leu123 in dG:dGTP misincorporation and can provide information for rational drug design to help combat ASFV in the future.


Nucleic Acids Research | 2018

Structural insights into DNA degradation by human mitochondrial nuclease MGME1

Chun Yang; Ruiqi Wu; Hehua Liu; Yiqing Chen; Yanqing Gao; Xi Chen; Yangyang Li; Jinbiao Ma; Jixi Li; Jianhua Gan

Abstract Mitochondrial nucleases play important roles in accurate maintenance and correct metabolism of mtDNA, the own genetic materials of mitochondria that are passed exclusively from mother to child. MGME1 is a highly conserved DNase that was discovered recently. Mutations in MGME1-coding gene lead to severe mitochondrial syndromes characterized by external ophthalmoplegia, emaciation, and respiratory failure in humans. Unlike many other nucleases that are distributed in multiple cellular organelles, human MGME1 is a mitochondria-specific nuclease; therefore, it can serve as an ideal target for treating related syndromes. Here, we report one HsMGME1-Mn2+ complex and three different HsMGME1-DNA complex structures. In combination with in vitro cleavage assays, our structures reveal the detailed molecular basis for substrate DNA binding and/or unwinding by HsMGME1. Besides the conserved two-cation-assisted catalytic mechanism, structural analysis of HsMGME1 and comparison with homologous proteins also clarified substrate binding and cleavage directionalities of the DNA double-strand break repair complexes RecBCD and AddAB.


Nucleic Acids Research | 2018

High-resolution DNA quadruplex structure containing all the A-, G-, C-, T-tetrads

Hehua Liu; Rui Wang; Xiang Yu; Fusheng Shen; Wenxian Lan; Phensinee Haruehanroengra; Qingqing Yao; Jing Zhang; Yiqing Chen; Suhua Li; Baixing Wu; Lina Zheng; Jinbiao Ma; Jinzhong Lin; Chunyang Cao; Jixi Li; Jia Sheng; Jianhua Gan

Abstract DNA can form diverse structures, which predefine their physiological functions. Besides duplexes that carry the genetic information, quadruplexes are the most well-studied DNA structures. In addition to their important roles in recombination, replication, transcription and translation, DNA quadruplexes have also been applied as diagnostic aptamers and antidisease therapeutics. Herein we further expand the sequence and structure complexity of DNA quadruplex by presenting a high-resolution crystal structure of DNA1 (5′-AGAGAGATGGGTGCGTT-3′). This is the first quadruplex structure that contains all the internal A-, G-, C-, T-tetrads, A:T:A:T tetrads and bulged nucleotides in one single structure; as revealed by site-specific mutagenesis and biophysical studies, the central ATGGG motif plays important role in the quadruplex formation. Interestingly, our structure also provides great new insights into cation recognition, including the first-time reported Pb2+, by tetrad structures.


Journal of Biomolecular Structure & Dynamics | 2018

Construction and structure studies of DNA-bipyridine complexes as versatile scaffolds for site-specific incorporation of metal ions into DNA

Rui Wang; Srivathsan V. Ranganathan; Phensinee Haruehanroengra; Song Mao; Matteo Scalabrin; Daniele Fabris; Alan Chen; Hehua Liu; Abdalla E. A. Hassan; Jianhua Gan; Jia Sheng

The facile construction of metal–DNA complexes using ‘Click’ reactions is reported here. A series of 2′-propargyl-modified DNA oligonucleotides were initially synthesized as structure scaffolds and were then modified through ‘Click’ reaction to incorporate a bipyridine ligand equipped with an azido group. These metal chelating ligands can be placed in the DNA context in site-specific fashion to provide versatile templates for binding various metal ions, which are exchangeable using a simple EDTA washing-and-filtration step. The constructed metal–DNA complexes were found to be thermally stable. Their structures were explored by solving a crystal structure of a propargyl-modified DNA duplex and installing the bipyridine ligands by molecular modeling and simulation. These metal–DNA complexes could have wide applications as novel organometallic catalysts, artificial ribonucleases, and potential metal delivery systems.


Nature Communications | 2018

Molecular basis for the specific and multivariant recognitions of RNA substrates by human hnRNP A2/B1.

Baixing Wu; Shichen Su; Deepak P. Patil; Hehua Liu; Jianhua Gan; Samie R. Jaffrey; Jinbiao Ma


Biochemical and Biophysical Research Communications | 2017

Structural insights into the specific recognition of DSR by the YTH domain containing protein Mmi1

Baixing Wu; Jinhao Xu; Shichen Su; Hehua Liu; Jianhua Gan; Jinbiao Ma

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Jia Sheng

State University of New York System

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Phensinee Haruehanroengra

State University of New York System

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