Biotransformation of ent-pimaradienoic acid by cell cultures of Aspergillus niger

Bioorg Med Chem. 2013 Sep 15;21(18):5870-5. doi: 10.1016/j.bmc.2013.07.009. Epub 2013 Jul 15.

Abstract

Microbial transformation stands out among the many possible semi-synthetic strategies employed to increase the variety of chemical structures that can be applied in the search for novel bioactive compounds. In this paper we obtained ent-pimaradienoic acid (1, PA, ent-pimara-8(14),15-dien-19-oic acid) derivatives by fungal biotransformation using Aspergillus niger strains. To assess the ability of such compounds to inhibit vascular smooth muscle contraction, we also investigated their spasmolytic effect, along with another five PA derivatives previously obtained in our laboratory, on aortic rings isolated from male Wistar rats. The microbial transformation experiments were conducted at 30°C using submerged shaken liquid culture (120 rpm) for 10 days. One known compound, 7α-hydroxy ent-pimara-8(14),15-dien-19-oic acid (2), and three new derivatives, 1β-hydroxy ent-pimara-6,8(14),15-trien-19-oic acid (3), 1α,6β,14β-trihydroxy ent-pimara-7,15-dien-19-oic acid (4), and 1α,6β,7α,11α-tetrahydroxy ent-pimara-8(14),15-dien-19-oic acid (5), were isolated and identified on the basis of spectroscopic analyses and computational studies. The compounds obtained through biotransformation (2-5) did not display a significant antispasmodic activity (values ranging from 0% to 16.8% of inhibition); however the previously obtained diterpene, methyl 7α-hydroxy ent-pimara-8(14),15-dien-19-oate (8), showed to be very effective (82.5% of inhibition). In addition, our biological results highlight the importance to study the antispasmodic potential of a large number of novel diterpenes, to conduct further structure-activity relationship investigations.

Keywords: Antispasmodic property; Aspergillus niger; Biotransformation; ent-Pimaradienoic acid.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Aorta / drug effects
  • Aorta / physiology
  • Aspergillus niger / metabolism*
  • Asteraceae / metabolism
  • Biotransformation
  • Diterpenes / chemistry
  • Diterpenes / metabolism*
  • Diterpenes / pharmacology
  • Magnetic Resonance Spectroscopy
  • Male
  • Molecular Conformation
  • Muscle Contraction / drug effects
  • Phenylephrine / pharmacology
  • Rats
  • Rats, Wistar
  • Stereoisomerism
  • Structure-Activity Relationship

Substances

  • Diterpenes
  • Phenylephrine
  • pimaric acid