Hit identification of novel small molecules interfering with MALAT1 triplex by a structure‐based virtual screening

Author:

Rocca Roberta12,Polerà Nicoletta1,Juli Giada1,Grillone Katia1,Maruca Annalisa2,Di Martino Maria Teresa1,Artese Anna23ORCID,Amato Jussara4,Pagano Bruno4ORCID,Randazzo Antonio4,Tagliaferri Pietrosandro1,Tassone Pierfrancesco1,Alcaro Stefano23

Affiliation:

1. Department of Experimental and Clinical Medicine Università degli Studi “Magna Græcia” di Catanzaro, Campus “Salvatore Venuta” Catanzaro Italy

2. Net4science srl, Università degli Studi “Magna Græcia” di Catanzaro Catanzaro Italy

3. Dipartimento di Scienze della Salute Università degli Studi “Magna Græcia” di Catanzaro, Campus “Salvatore Venuta” Catanzaro Italy

4. Department of Pharmacy University of Naples Federico II Naples Italy

Abstract

AbstractNowadays, RNA is an attractive target for the design of new small molecules with different pharmacological activities. Among several RNA molecules, long noncoding RNAs (lncRNAs) are extensively reported to be involved in cancer pathogenesis. In particular, the overexpression of lncRNA metastasis‐associated lung adenocarcinoma transcript 1 (MALAT1) plays an important role in the development of multiple myeloma (MM). Starting from the crystallographic structure of the triple‐helical stability element at the 3'‐end of MALAT1, we performed a structure‐based virtual screening of a large commercial database, previously filtered according to the drug‐like properties. After a thermodynamic analysis, we selected five compounds for the in vitro assays. Compound M5, characterized by a diazaindene scaffold, emerged as the most promising molecule enabling the destabilization of the MALAT1 triplex structure and antiproliferative activity on in vitro models of MM. M5 is proposed as a lead compound to be further optimized for improving its affinity toward MALAT1.

Funder

Associazione Italiana per la Ricerca sul Cancro

Publisher

Wiley

Subject

Drug Discovery,Pharmaceutical Science

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