Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Ming-Hao Hu is active.

Publication


Featured researches published by Ming-Hao Hu.


Nucleic Acids Research | 2017

Specific targeting of telomeric multimeric G-quadruplexes by a new triaryl-substituted imidazole

Ming-Hao Hu; Shuo-Bin Chen; Bo Wang; Tian-Miao Ou; Lian-Quan Gu; Jia-Heng Tan; Zhi-Shu Huang

Abstract Multiple G-quadruplex units in the 3΄-terminal overhang of human telomeric DNA can associate and form multimeric structures. The specific targeting of such distinctive higher-order G-quadruplexes might be a promising strategy for developing selective anticancer agents with fewer side effects. However, thus far, only a few molecules were found to selectively bind to telomeric multimeric G-quadruplexes, and their effects on cancer cells were unknown. In this study, a new triaryl-substituted imidazole derivative called IZNP-1 was synthesized and found to specifically bind to and strongly stabilize telomeric multimeric G-quadruplexes through intercalating into the pocket between the two quadruplex units. The pocket size might affect the binding behavior of IZNP-1. Further cellular studies indicated that IZNP-1 could provoke cell cycle arrest, apoptosis and senescence in Siha cancer cells, mainly because of telomeric DNA damage and telomere dysfunction induced by the interactions of IZNP-1 with telomeric G-quadruplexes. Notably, IZNP-1 had no effect on the transcriptional levels of several common oncogenes that have the potential to form monomeric G-quadruplex structures in their promoter regions. Such behavior differed from that of traditional telomeric G-quadruplex ligands. Accordingly, this work provides new insights for the development of selective anticancer drugs targeting telomeric multimeric G-quadruplexes.


Scientific Reports | 2015

A new application of click chemistry in situ: development of fluorescent probe for specific G-quadruplex topology

Ming-Hao Hu; Xiao Chen; Shuo-Bin Chen; Tian-Miao Ou; Meicun Yao; Lian-Quan Gu; Zhi-Shu Huang; Jia-Heng Tan

Target-guided synthesis is an approach to drug discovery that allows the target to self-assemble its own binding agents. So far, target-guided synthesis and especially in situ click chemistry have attracted extensive attention and have led to the identification of highly potent inhibitors for proteins. In this study, we expand the application of in situ click chemistry and present a procedure using this approach to identify selective fluorescent probes for a specific topology of G-quadruplex nucleic acids, the parallel G-quadruplexes. On this basis, compound 15 assembled by triarylimidazole scaffold and carboxyl side chain was a positive hit, demonstrating highly potential in the sensitive and selective detection of parallel G-quadruplexes. Such selective fluorescence response can be rationalized in terms of different binding affinities between 15 and G-quadruplexes. Our work accordingly represents a new development towards the application of in situ click chemistry to develop selective fluorescent probes and may also shed light on the search for probes for a specific G-quadruplex topology.


Biosensors and Bioelectronics | 2016

Accurate high-throughput identification of parallel G-quadruplex topology by a new tetraaryl-substituted imidazole

Ming-Hao Hu; Shuo-Bin Chen; Yu-Qing Wang; You-Mei Zeng; Tian-Miao Ou; Ding Li; Lian-Quan Gu; Zhi-Shu Huang; Jia-Heng Tan

G-quadruplex nucleic acids are four-stranded DNA or RNA secondary structures that are formed in guanine-rich sequences. These structures exhibit extensive structural polymorphism and play a pivotal role in the control of a variety of cellular processes. To date, diverse approaches for high-throughput identification of G-quadruplex structures have been successfully developed, but high-throughput methods for further characterization of their topologies are still lacking. In this study, we report a new tetra-arylimidazole probe psIZCM-1, which was found to display significant and distinctive changes in both the absorption and the fluorescence spectra in the presence of parallel G-quadruplexes but show insignificant changes upon interactions with anti-parallel G-quadruplexes or other non-quadruplex oligonucleotides. In view of this dual-output feature, we used psIZCM-1 to identify the parallel G-quadruplexes from a large set of 314 oligonucleotides (including 300 G-quadruplex-forming oligonucleotides and 14 non-quadruplex oligonucleotides) via a microplate reader and accordingly established a high-throughput method for the characterization of parallel G-quadruplex topologies. The accuracy of this method was greater than 95%, which was much higher than that of the commercial probe NMM. To make the approach more practical, we further combined psIZCM-1 with another G-quadruplex probe IZCM-7 to realize the high-throughput classification of parallel, anti-parallel G-quadruplexes and non-quadruplex structures.


Journal of Medicinal Chemistry | 2018

Discovery of a New Four-Leaf Clover-Like Ligand as a Potent c-MYC Transcription Inhibitor Specifically Targeting the Promoter G-Quadruplex

Ming-Hao Hu; Yu-Qing Wang; Ze-Yi Yu; Lu-Ni Hu; Tian-Miao Ou; Shuo-Bin Chen; Zhi-Shu Huang; Jia-Heng Tan

Downregulating transcription of the oncogene c-MYC is a feasible strategy for cancer therapy. Stabilization of the G-quadruplex structure present in the c-MYC promoter can suppress c-MYC transcription. Thus, far, several ligands targeting this structure have been developed. However, most have shown no selectivity for the c-MYC G-quadruplex over other G-quadruplexes, leading to uncertain side effects. In this study, through structural modification of aryl-substituted imidazole/carbazole conjugates, a brand-new, four-leaf clover-like ligand called IZCZ-3 was found to preferentially bind and stabilize the c-MYC G-quadruplex. Further intracellular studies indicated that IZCZ-3 provoked cell cycle arrest and apoptosis and thus inhibited cell growth, primarily by blocking c-MYC transcription through specific targeting of the promoter G-quadruplex structure. Notably, IZCZ-3 effectively suppressed tumor growth in a mouse xenograft model. Accordingly, this work provides an encouraging example of a selective small molecule that can target one particular G-quadruplex structure, and the selective ligand might serve as an excellent anticancer agent.


Molecules | 2018

Natural Aromatic Compounds as Scaffolds to Develop Selective G-Quadruplex Ligands: From Previously Reported Berberine Derivatives to New Palmatine Analogues

Marco Franceschin; Lorenzo Cianni; Massimo Pitorri; Emanuela Micheli; Stefano Cacchione; Claudio Frezza; Mauro Serafini; Ming-Hao Hu; Huafi Su; Zhi-Shu Huang; Lian-Quan Gu; Armandodoriano Bianco

In this paper, the selective interactions of synthetic derivatives of two natural compounds, berberine and palmatine, with DNA G-quadruplex structures were reported. In particular, the previous works on this subject concerning berberine were further presented and discussed, whereas the results concerning palmatine are presented here for the first time. In detail, these palmatine derivatives were developed by inserting seven different small peptide basic chains, giving several new compounds that have never been reported before. The preliminary studies of the interactions of these compounds with various G-quadruplex-forming sequences were carried out by means of various structural and biochemical techniques, which showed that the presence of suitable side chains is very useful for improving the interaction of the ligands with G-quadruplex structures. Thus, these new palmatine derivatives might act as potential anticancer drugs.


Journal of the American Chemical Society | 2016

Visualization of NRAS RNA G-Quadruplex Structures in Cells with an Engineered Fluorogenic Hybridization Probe

Shuo-Bin Chen; Ming-Hao Hu; Guo-Cai Liu; Jin Wang; Tian-Miao Ou; Lian-Quan Gu; Zhi-Shu Huang; Jia-Heng Tan


Chemical Communications | 2014

Discovery of a new fluorescent light-up probe specific to parallel G-quadruplexes

Shuo-Bin Chen; Wei-Bin Wu; Ming-Hao Hu; Tian-Miao Ou; Lian-Quan Gu; Jia-Heng Tan; Zhi-Shu Huang


Analyst | 2015

Development of a highly sensitive fluorescent light-up probe for G-quadruplexes

Ming-Hao Hu; Shuo-Bin Chen; Rui-Jun Guo; Tian-Miao Ou; Zhi-Shu Huang; Jia-Heng Tan


Organic and Biomolecular Chemistry | 2013

Synthesis and biological evaluation of benzo[a]phenazine derivatives as a dual inhibitor of topoisomerase I and II

Shi-Tian Zhuo; Chun-Yan Li; Ming-Hao Hu; Shuo-Bin Chen; Pei-Fen Yao; Shi-Liang Huang; Tian-Miao Ou; Jia-Heng Tan; Lin-Kun An; Ding Li; Lian-Quan Gu; Zhi-Shu Huang


Journal of Medicinal Chemistry | 2017

Discovery of Novel 11-Triazole Substituted Benzofuro[3,2-b]quinolone Derivatives as c-myc G-Quadruplex Specific Stabilizers via Click Chemistry

De-Ying Zeng; Guo-Tao Kuang; Shi-Ke Wang; Wang Peng; Shu-Ling Lin; Qi Zhang; Xiao-Xuan Su; Ming-Hao Hu; Honggen Wang; Jia-Heng Tan; Zhi-Shu Huang; Lian-Quan Gu; Tian-Miao Ou

Collaboration


Dive into the Ming-Hao Hu's collaboration.

Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Ding Li

Sun Yat-sen University

View shared research outputs
Top Co-Authors

Avatar

Rui-Jun Guo

Sun Yat-sen University

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Bo Wang

Sun Yat-sen University

View shared research outputs
Top Co-Authors

Avatar

Chun-Yan Li

Sun Yat-sen University

View shared research outputs
Researchain Logo
Decentralizing Knowledge