Literature DB >> 26368576

Chemically synthesized dicarba H2 relaxin analogues retain strong RXFP1 receptor activity but show an unexpected loss of in vitro serum stability.

Mohammed Akhter Hossain1, Linda M Haugaard-Kedström, K Johan Rosengren, Ross A D Bathgate, John D Wade.   

Abstract

Peptides and proteins are now acknowledged as viable alternatives to small molecules as potential therapeutic agents. A primary limitation to their more widespread acceptance is their generally short in vivo half-lives due to serum enzyme susceptibility and rapid renal clearance. Numerous chemical approaches to address this concern have been undertaken in recent years. The replacement of disulfide bonds with non-reducible elements has been demonstrated to be one effective means by eliminating the deleterious effect of serum reductases. In particular, substitution with dicarba bonds via ring closure metathesis has been increasingly applied to many bioactive cystine-rich peptides. We used this approach for the replacement of the A-chain intramolecular disulfide bond of human relaxin 2 (H2 relaxin), an insulin-like peptide that has important regulatory roles in cardiovascular and connective tissue homeostasis that has led to successful Phase IIIa clinical trials for the treatment of acute heart failure. Use of efficient solid phase synthesis of the two peptide chains was followed by on-resin ring closure metathesis and formation of the dicarba bond within the A-chain and then by off-resin combination with the B-chain via sequential directed inter-chain disulfide bond formation. After purification and comprehensive chemical characterization, the two isomeric synthetic H2 relaxin analogues were shown to retain near-equipotent RXFP1 receptor binding and activation propensity. Unexpectedly, the in vitro serum stability of the analogues was greatly reduced compared with the native peptide. Circular dichroism spectroscopy studies showed subtle differences in the secondary structures between dicarba analogues and H2 relaxin suggesting that, although the overall fold is retained, it may be destabilized which could account for rapid degradation of dicarba analogues in serum. Caution is therefore recommended when using ring closure metathesis as a general approach to enhance peptide stability.

Entities:  

Mesh:

Substances:

Year:  2015        PMID: 26368576     DOI: 10.1039/c5ob01539a

Source DB:  PubMed          Journal:  Org Biomol Chem        ISSN: 1477-0520            Impact factor:   3.876


  4 in total

1.  Probing the correlation between insulin activity and structural stability through introduction of the rigid A6-A11 bond.

Authors:  Shee Chee Ong; Alessia Belgi; Bianca van Lierop; Carlie Delaine; Sofianos Andrikopoulos; Christopher A MacRaild; Raymond S Norton; Naomi L Haworth; Andrea J Robinson; Briony E Forbes
Journal:  J Biol Chem       Date:  2018-06-13       Impact factor: 5.157

2.  Insulin in motion: The A6-A11 disulfide bond allosterically modulates structural transitions required for insulin activity.

Authors:  Bianca van Lierop; Shee Chee Ong; Alessia Belgi; Carlie Delaine; Sofianos Andrikopoulos; Naomi L Haworth; John G Menting; Michael C Lawrence; Andrea J Robinson; Briony E Forbes
Journal:  Sci Rep       Date:  2017-12-08       Impact factor: 4.379

3.  A chameleonic macrocyclic peptide with drug delivery applications.

Authors:  Colton D Payne; Bastian Franke; Mark F Fisher; Fatemeh Hajiaghaalipour; Courtney E McAleese; Angela Song; Carl Eliasson; Jingjing Zhang; Achala S Jayasena; Grishma Vadlamani; Richard J Clark; Rodney F Minchin; Joshua S Mylne; K Johan Rosengren
Journal:  Chem Sci       Date:  2021-04-11       Impact factor: 9.825

4.  Chemical synthesis and biological activity of peptides incorporating an ether bridge as a surrogate for a disulfide bond.

Authors:  Rui Zhao; Pan Shi; Junyou Chen; Shuaishuai Sun; Jingnan Chen; Jibin Cui; Fangming Wu; Gemin Fang; Changlin Tian; Jing Shi; Donald Bierer; Lei Liu; Yi-Ming Li
Journal:  Chem Sci       Date:  2020-07-08       Impact factor: 9.825

  4 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.