Marine bisindole alkaloid: A potential apoptotic inducer in human cancer cells
Author(s) -
Sara Salucci,
Sabrina Burattini,
Francesca Buontempo,
Ester Orsini,
Lucia Furiassi,
Michele Mari,
Simone Lucarini,
Alberto M. Martelli,
Elisabetta Falcieri
Publication year - 2018
Publication title -
european journal of histochemistry
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.754
H-Index - 42
eISSN - 2038-8306
pISSN - 1121-760X
DOI - 10.4081/ejh.2018.2881
Subject(s) - apoptosis , dna fragmentation , ethylamine , microbiology and biotechnology , alkaloid , chemistry , programmed cell death , fragmentation (computing) , biology , inducer , signal transduction , biochemistry , stereochemistry , gene , ecology , organic chemistry
Marine organisms such as corals, sponges and tunicates produce active molecules which could represent a valid starting point for new drug development processes. Among the various structural classes, the attention has been focused on 2,2-bis(6-bromo-3-indolyl) ethylamine, a marine alkaloid which showed a good anticancer activity against several tumor cell lines. Here, for the first time, the mechanisms of action of 2,2-bis(6-bromo-3-indolyl) ethylamine have been evaluated in a U937 tumor cell model. Morpho-functional and molecular analyses, highlighting its preferred signaling pathway, demonstrated that apoptosis is the major death response induced by this marine compund. Chromatin condensation, micronuclei formation, blebbing and in situ DNA fragmentation, occurring through caspase activation (extrinsic and intrinsic pathways), were observed. In particular, the bisindole alkaloid induces a mitochondrial involvement in apoptosis machinery activation with Blc-2/Bcl-x down-regulation and Bax up-regulation. These findings demonstrated that 2,2-bis(6-bromo-3-indolyl) ethylamine alkaloid-induced apoptosis is regulated by the Bcl-2 protein family upstream of caspase activation.
Accelerating Research
Robert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom
Address
John Eccles HouseRobert Robinson Avenue,
Oxford Science Park, Oxford
OX4 4GP, United Kingdom