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Regular Simple Queues of Protein Contact Maps
Qiang-Hui Guo1, Lisa Hui Sun2,3, Jian Wang1
1Center for Combinatorics, LPMC, Nankai University, Tianjin, 300071, People's Republic of China.
Bulletin of Mathematical Biology
|November 16, 2016
Summary
This study connects protein folding contact maps to combinatorial structures. We establish correspondences between 2-regular and 3-regular simple queues and specific types of Motzkin paths, yielding new enumeration formulas.
Area of Science:
- Computational Biology
- Combinatorics
- Graph Theory
Background:
- Protein folds can be modeled as self-avoiding walks on lattices.
- Contact maps represent contact patterns within protein folds.
- Previous work showed 2D lattice contact maps decompose into stacks and queues.
Purpose of the Study:
- To investigate 2-regular and 3-regular simple queues in the context of protein contact maps.
- To establish combinatorial relationships between these queues and Motzkin paths.
- To derive generating functions and asymptotic formulas for these structures.
Main Methods:
- Establishing one-to-one correspondences between queue types and specific Motzkin paths.
- Utilizing recurrence relations for generating functions.
- Applying combinatorial enumeration techniques.
Main Results:
- Demonstrated a bijection between 2-regular simple queues and hill-free Motzkin paths.
- Derived a generating function for Motzkin paths with specific peak properties.
- Showed a correspondence between 3-regular simple queues and pattern-avoiding Motzkin paths.
- Obtained generating functions for both 2-regular and 3-regular simple queues.
Conclusions:
- The study provides a combinatorial framework for analyzing protein folding contact maps.
- New enumeration formulas for specific types of queues and Motzkin paths were derived.
- Asymptotic formulas offer insights into the behavior of these structures.
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