AI Article Synopsis

  • Protein structure prediction (PSP) is a major challenge in computational biology, mainly due to issues with inaccurate energy functions and search processes that may not yield correct protein structures.
  • A new parallel metaheuristic approach addresses these challenges by using multiple energy functions to guide simultaneous search threads, allowing for dynamic adjustments during the search.
  • The approach combines parallel ant colony intelligence and Monte Carlo Metropolis methods, demonstrating effectiveness through testing on 16 classical instances, ultimately providing a framework for integrating various search techniques and energy functions to enhance protein conformation predictions.

Article Abstract

Background: Protein structure prediction (PSP), which is usually modeled as a computational optimization problem, remains one of the biggest challenges in computational biology. PSP encounters two difficult obstacles: the inaccurate energy function problem and the searching problem. Even if the lowest energy has been luckily found by the searching procedure, the correct protein structures are not guaranteed to obtain.

Results: A general parallel metaheuristic approach is presented to tackle the above two problems. Multi-energy functions are employed to simultaneously guide the parallel searching threads. Searching trajectories are in fact controlled by the parameters of heuristic algorithms. The parallel approach allows the parameters to be perturbed during the searching threads are running in parallel, while each thread is searching the lowest energy value determined by an individual energy function. By hybridizing the intelligences of parallel ant colonies and Monte Carlo Metropolis search, this paper demonstrates an implementation of our parallel approach for PSP. 16 classical instances were tested to show that the parallel approach is competitive for solving PSP problem.

Conclusions: This parallel approach combines various sources of both searching intelligences and energy functions, and thus predicts protein conformations with good quality jointly determined by all the parallel searching threads and energy functions. It provides a framework to combine different searching intelligence embedded in heuristic algorithms. It also constructs a container to hybridize different not-so-accurate objective functions which are usually derived from the domain expertise.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC3460973PMC
http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0044967PLOS

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