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Jun‐Li Hou

Fudan University · CN
Area of research
Molecular Biology · Organic Chemistry
Research interest
Research interests include Supramolecular Chemistry and Complexes, Chemical Synthesis and Analysis, Molecular Sensors and Ion Detection, and Supramolecular Self-Assembly in Materials.
h-index
41
citations
6,973
works
128
NIH funding
primary concept
email

Recent publications

Supramolecular systems for bioapplications: recent research progress in China
Science China Chemistry 2024cited by 77position: middledoi
Constructing artificial gap junctions to mediate intercellular signal and mass transport
Nature Chemistry 2024cited by 41position: lastdoi
Enantioselective Synthesis of Atropisomeric Tri‐Axis Naphthalenes via Diels–Alder Reaction and Dehydrative Aromatization of Isobenzofurans
Angewandte Chemie International Edition 2024cited by 15position: middledoi
Enantioselective Synthesis of Inherently Chiral Calix[4]arenes via Palladium-Catalyzed Asymmetric Intramolecular C–H Arylations
Journal of the American Chemical Society 2022cited by 84position: middledoi
Voltage-Driven Flipping of Zwitterionic Artificial Channels in Lipid Bilayers to Rectify Ion Transport
Journal of the American Chemical Society 2021cited by 55position: lastdoi
Nuclear dihydroxyacetone phosphate signals nutrient sufficiency and cell cycle phase to global histone acetylation
Nature Metabolism 2021cited by 44position: middledoi
Artificial Aquaporin That Restores Wound Healing of Impaired Cells
Journal of the American Chemical Society 2020cited by 93position: lastdoi
Inhibiting MARSs reduces hyperhomocysteinemia‐associated neural tube and congenital heart defects
EMBO Molecular Medicine 2020cited by 47position: middledoi
Artificial water channels enable fast and selective water permeation through water-wire networks
Nature Nanotechnology 2019cited by 169position: middledoi
Targeting the Cell Membrane by Charge-Reversal Amphiphilic Pillar[5]arene for the Selective Killing of Cancer Cells
ACS Applied Materials & Interfaces 2019cited by 83position: middledoi
Supramolecular Kandinsky circles with high antibacterial activity
Nature Communications 2018cited by 107position: middledoi
Controllable synthetic ion channels
Organic Chemistry Frontiers 2018cited by 86position: lastdoi
Synthetic Channel Specifically Inserts into the Lipid Bilayer of Gram‐Positive Bacteria but not that of Mammalian Erythrocytes
Angewandte Chemie International Edition 2017cited by 121position: lastdoi
Reversible photo-gated transmembrane channel assembled from an acylhydrazone-containing crown ether triad
Chemical Communications 2017cited by 84position: middledoi
Near‐Infrared‐Triggered Azobenzene‐Liposome/Upconversion Nanoparticle Hybrid Vesicles for Remotely Controlled Drug Delivery to Overcome Cancer Multidrug Resistance
Advanced Materials 2016cited by 339position: middledoi
Directional Potassium Transport through a Unimolecular Peptide Channel
Angewandte Chemie International Edition 2016cited by 63position: lastdoi
Tubular Unimolecular Transmembrane Channels: Construction Strategy and Transport Activities
Accounts of Chemical Research 2015cited by 297position: lastdoi
Highly permeable artificial water channels that can self-assemble into two-dimensional arrays
Proceedings of the National Academy of Sciences 2015cited by 185position: middledoi
Voltage‐Driven Reversible Insertion into and Leaving from a Lipid Bilayer: Tuning Transmembrane Transport of Artificial Channels
Angewandte Chemie International Edition 2014cited by 183position: lastdoi
Voltage‐Driven Reversible Insertion into and Leaving from a Lipid Bilayer: Tuning Transmembrane Transport of Artificial Channels
Angewandte Chemie 2014cited by 128position: lastdoi
Hydrogen-Bonded Helical Hydrazide Oligomers and Polymer That Mimic the Ion Transport of Gramicidin A
Journal of the American Chemical Society 2014cited by 115position: middledoi
Preorganized Aryltriazole Foldamers as Effective Transmembrane Transporters for Chloride Anion
Organic Letters 2014cited by 57position: middledoi
Chiral Selective Transmembrane Transport of Amino Acids through Artificial Channels
Journal of the American Chemical Society 2013cited by 301position: lastdoi
Aromatic Amide Foldamers: Structures, Properties, and Functions
Chemical Reviews 2012cited by 671position: middledoi
Single-Molecular Artificial Transmembrane Water Channels
Journal of the American Chemical Society 2012cited by 415position: middledoi
Pillar[n]arenes (n = 8–10) with two cavities: synthesis, structures and complexing properties
Chemical Communications 2012cited by 217position: middledoi
<i>per</i>-Hydroxylated Pillar[6]arene: Synthesis, X-ray Crystal Structure, and Host–Guest Complexation
Organic Letters 2012cited by 190position: lastdoi

Grants

No grants ingested yet.

Frequent collaborators

Zhan‐Ting Li · Fudan University14 papers (2012–2024)Wen Si · Fudan University5 papers (2013–2017)Pingping Zhu · Fudan University4 papers (2014–2020)Pengyang Xin · Fudan University3 papers (2014–2017)Min Zhang · Chongqing University3 papers (2016–2021)Wen Si · Fudan University3 papers (2014–2017)Aleksei Aksimentiev · University of Illinois Urbana-Champaign2 papers (2015–2019)Manish Kumar · Pennsylvania State University2 papers (2015–2019)Yu Liu · Qingdao University2 papers (2017–2024)Yong Chen · Nantong University2 papers (2017–2024)Leyong Wang · Friedrich-Alexander-Universität Erlangen-Nürnberg2 papers (2016–2024)Jian‐Yuan Zhao · Chinese Academy of Medical Sciences & Peking Union Medical College2 papers (2020–2021)Xiaobo Hu · Fudan University2 papers (2012–2012)Yuzhen Zhang · Fudan University2 papers (2022–2024)Tao Lin · Fudan University2 papers (2019–2024)Zhenxia Chen · Fudan University2 papers (2012–2012)Xiao‐Yu Hu · Xinjiang University2 papers (2016–2024)Yonghong Fu · Fudan University2 papers (2021–2024)Quan Cai · Fudan University2 papers (2022–2024)Gangfeng Tang · Fudan University2 papers (2012–2013)