Conformational Transition‐Triggered Disassembly of Therapeutic Peptide Nanomedicine for Tumor Therapy

2021 ◽  
pp. 2100333
Author(s):  
Guo‐Qiao Wang ◽  
Jia Yang ◽  
Da‐Yong Hou ◽  
Rui Zheng ◽  
Muhetaerjiang Mamuti ◽  
...  
Author(s):  
Minh Nguyen ◽  
Guang Huan-Tu ◽  
Melissa Gonzalez-Edick ◽  
Victor M Rivera ◽  
Tim Clackson ◽  
...  
Keyword(s):  

2019 ◽  
Vol 8 (2) ◽  
Author(s):  
Shingo Nishikawa ◽  
Ryo Ariyasu ◽  
Tomoaki Sonoda ◽  
Masafumi Saiki ◽  
Takahiro Yoshizawa ◽  
...  

A 27-year-old man was diagnosed with inflammatory myofibroblastic tumor, and multiple lymph node and subcutaneous metastases. After several administrations of anti-tumor therapy, he underwent mediastinal lymph node biopsy using endobronchial ultrasound-guided transbronchial needle aspiration (EBUS-TBNA) to confirm tumor relapse. Five weeks later, he complained of chest pain, then rapidly developed shock due to acute pericarditis. Although he was treated with antibiotics for anaerobic bacterial infection and cardiac drainage, mediastinal lymph node abscess and pericarditis did not improve. After the surgical procedure, his physical condition dramatically improved and he was treated with another molecularly targeted therapy. Pericarditis associated with EBUS-TBNA is extremely rare. In this case, salvage was achieved by surgical drainage of the lymph node abscess and pericarditis, and long survival was obtained with further administration of anti-tumor treatment.


2017 ◽  
Author(s):  
Jana Shen ◽  
Zhi Yue ◽  
Helen Zgurskaya ◽  
Wei Chen

AcrB is the inner-membrane transporter of E. coli AcrAB-TolC tripartite efflux complex, which plays a major role in the intrinsic resistance to clinically important antibiotics. AcrB pumps a wide range of toxic substrates by utilizing the proton gradient between periplasm and cytoplasm. Crystal structures of AcrB revealed three distinct conformational states of the transport cycle, substrate access, binding and extrusion, or loose (L), tight (T) and open (O) states. However, the specific residue(s) responsible for proton binding/release and the mechanism of proton-coupled conformational cycling remain controversial. Here we use the newly developed membrane hybrid-solvent continuous constant pH molecular dynamics technique to explore the protonation states and conformational dynamics of the transmembrane domain of AcrB. Simulations show that both Asp407 and Asp408 are deprotonated in the L/T states, while only Asp408 is protonated in the O state. Remarkably, release of a proton from Asp408 in the O state results in large conformational changes, such as the lateral and vertical movement of transmembrane helices as well as the salt-bridge formation between Asp408 and Lys940 and other sidechain rearrangements among essential residues.Consistent with the crystallographic differences between the O and L protomers, simulations offer dynamic details of how proton release drives the O-to-L transition in AcrB and address the controversy regarding the proton/drug stoichiometry. This work offers a significant step towards characterizing the complete cycle of proton-coupled drug transport in AcrB and further validates the membrane hybrid-solvent CpHMD technique for studies of proton-coupled transmembrane proteins which are currently poorly understood. <p><br></p>


2012 ◽  
Vol 28 (6) ◽  
pp. 448 ◽  
Author(s):  
Ling ZHU ◽  
Xiangxi WANG ◽  
Xuemei LI ◽  
Jinliang YANG

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