Label-free Protein Analysis Methods for Active Compound Targets Identification

被引:0
作者
Lyu Bohai [1 ,2 ]
Gou Wenfeng [2 ]
Xu Feifei [2 ]
Li Yanli [2 ]
Li Yiliang [2 ]
Hou Wenbin [2 ]
机构
[1] Tianjin Univ Tradit Chinese Med, Inst Tradit Chinese Med, Tianjin 301617, Peoples R China
[2] Peking Union Med Coll & Chinese Acad Med Sci, Inst Radiat Med, Tianjin 300192, Peoples R China
基金
中国国家自然科学基金;
关键词
target identification; label-free; protein analysis; thermodynamic action; ligand binding; fluorescence reporting; SIGNALING IN-VIVO; CORRELATION SPECTROSCOPY; DISCOVERY; CELLS; INHIBITORS; DYNAMICS; ASSAY;
D O I
10.6023/A24030082
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
As more and more active ingredients are discovered, there is an increasing demand to explore the pharmacological mechanisms of these drugs and identify their effective targets. Chemical biology, as a newly developed interdisciplinary field in recent years, is the best choice to undertake this task. The identification method of unlabeled targets does not involve any chemical modification of small molecular drugs and has attracted wide attention in recent years. Most of the target identification methods based on interaction belong to the type of unlabeled deconvolution. Label-free protein analysis can also help predict potential drug targets or candidates, develop new biomarker assays and diagnostic reagents, and evaluate the selectivity and range of active compounds to reduce the risk of off-target effects. It can achieve these goals using techniques such as changing protein thermal stability, enzyme sensitivity, and molecular structure and using mass spectrometry. In this paper, we review the reported Label-free protein analysis techniques for identifying different types of targets. Based on different principles from three perspectives, hydrogen deuterium exchange mass spectrometry, surface plasmon resonance, microscale thermophoresis, fluorescence correlation spectroscopy, and other techniques are introduced, and the principles and scope of application of these techniques are introduced to readers through figures, texts, and tables. The combined use of various techniques can improve the success rate of target discovery, but this review still has the limitation of incomplete summary of the techniques. To give the reader an initial impression of Label-free protein analysis techniques that can provide valuable insights for drug target discovery. The target identification of active compounds can deepen our understanding of the mode of action of clinical drugs, help to discover new undruggable proteins, and provide the possibility for innovative treatments. With the development of mass spectrometry-based proteomics and computational biology, it can provide more help and possibility for us to explore the targets of active compounds. The popularization of these techniques can provide more options for researchers and facilitate the improvement of drug properties.
引用
收藏
页码:629 / 640
页数:12
相关论文
共 105 条
  • [71] Identifying drug targets in tissues and whole blood with thermal-shift profiling
    Perrin, Jessica
    Werner, Thilo
    Kurzawa, Nils
    Rutkowska, Anna
    Childs, Dorothee D.
    Kalxdorf, Mathias
    Poeckel, Daniel
    Stonehouse, Eugenia
    Strohmer, Katrin
    Heller, Bianca
    Thomson, Douglas W.
    Krause, Jana
    Becher, Isabelle
    Eberl, H. Christian
    Vappiani, Johanna
    Sevin, Daniel C.
    Rau, Christina E.
    Franken, Holger
    Huber, Wolfgang
    Faelth-Savitski, Maria
    Savitski, Mikhail M.
    Bantscheff, Marcus
    Bergamini, Giovanna
    [J]. NATURE BIOTECHNOLOGY, 2020, 38 (03) : 303 - +
  • [72] Strategies Using Bio-Layer Interferometry Biosensor Technology for Vaccine Research and Development
    Petersen, Rejane L.
    [J]. BIOSENSORS-BASEL, 2017, 7 (04):
  • [73] Pettinger J., 2017, Angew. Chem., Int. Ed., P56
  • [74] Pham TV, 2012, EXPERT REV MOL DIAGN, V12, P343, DOI [10.1586/erm.12.31, 10.1586/ERM.12.31]
  • [75] Linking chromatin acylation mark-defined proteome and genome in living cells
    Qin, Fangfei
    Li, Boyuan
    Wang, Hui
    Ma, Sihui
    Li, Jiaofeng
    Liu, Shanglin
    Kong, Linghao
    Zheng, Huangtao
    Zhu, Rongfeng
    Han, Yu
    Yang, Mingdong
    Li, Kai
    Ji, Xiong
    Chen, Peng R.
    [J]. CELL, 2023, 186 (05) : 1066 - +
  • [76] Lumefantrine, an antimalarial drug, reverses radiation and temozolomide resistance in glioblastoma
    Rajesh, Yetirajam
    Biswas, Angana
    Kumar, Utkarsh
    Banerjee, Indranil
    Das, Subhayan
    Maji, Santanu
    Das, Swadesh K.
    Emdad, Luni
    Cavenee, Webster K.
    Mandal, Mahitosh
    Fisher, Paul B.
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2020, 117 (22) : 12324 - 12331
  • [77] Surface plasmon resonance biosensors for detection of Alzheimer's biomarkers; an effective step in early and accurate diagnosis
    Rezabakhsh, Aysa
    Rahbarghazi, Reza
    Fathi, Farzaneh
    [J]. BIOSENSORS & BIOELECTRONICS, 2020, 167
  • [78] Testing for drug-human serum albumin binding using fluorescent probes and other methods
    Ronzetti, Michael
    Baljinnyam, Bolormaa
    Yasgar, Adam
    Simeonov, Anton
    [J]. EXPERT OPINION ON DRUG DISCOVERY, 2018, 13 (11) : 1005 - 1014
  • [79] Tracking cancer drugs in living cells by thermal profiling of the proteome
    Savitski, Mikhail M.
    Reinhard, Friedrich B. M.
    Franken, Holger
    Werner, Thilo
    Savitski, Maria Faelth
    Eberhard, Dirk
    Molina, Daniel Martinez
    Jafari, Rozbeh
    Dovega, Rebecca Bakszt
    Klaeger, Susan
    Kuster, Bernhard
    Nordlund, Paer
    Bantscheff, Marcus
    Drewes, Gerard
    [J]. SCIENCE, 2014, 346 (6205) : 55 - +
  • [80] Illuminating the kinome: Visualizing real-time kinase activity in biological systems using genetically encoded fluorescent protein-based biosensors
    Schmitt, Danielle L.
    Mehta, Sohum
    Zhang, Jin
    [J]. CURRENT OPINION IN CHEMICAL BIOLOGY, 2020, 54 : 63 - 69