International Conference on Computational Molecular Biology - (ICCMB-27)


23rd - 24th March, 2027 | Bayamon, Puerto Rico

Multi-format (In-person/Virtual)

Registration Options

Explore conference registration categories designed for every mode of participation.

Important Dates

Pre-registration Deadline

21st February, 2027

Paper Submission Deadline

26th February, 2027

Last Date Of Registration

8th March, 2027

Date Of Conference

23rd - 24th March, 2027

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Conference Session Tracks

SDG Wheel

Aligned with

UN Sustainable Development Goals

This conference contributes to global sustainability by aligning its research discussions and academic sessions with key United Nations Sustainable Development Goals. It fosters knowledge exchange, innovation, and collaborative engagement.

SDG 3 SDG 3 — Good Health and Well-being
SDG 4 SDG 4 — Quality Education
SDG 9 SDG 9 — Industry, Innovation and Infrastructure
SDG 12 SDG 12 — Responsible Consumption and Production
SDG 15 SDG 15 — Life on Land
SDG 16 SDG 16 — Peace, Justice and Strong Institutions
SDG 17 SDG 17 — Partnerships for the Goals
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All Session Tracks

Track 01
Computational Genomics

This track focuses on the application of computational techniques to analyze genomic data. Topics include genome assembly, annotation, and comparative genomics.

Track 02
Systems Biology and Network Analysis

This session explores the integration of computational models with biological networks to understand complex biological systems. Emphasis is placed on the modeling of metabolic and signaling pathways.

Track 03
Bioinformatics Algorithms and Tools

This track invites contributions on novel algorithms and software tools designed for biological data analysis. Topics may include sequence alignment, protein structure prediction, and data mining.

Track 04
Molecular Dynamics and Simulations

This session addresses the computational methods used to simulate molecular interactions and dynamics. It covers topics such as protein folding, ligand binding, and drug design.

Track 05
Machine Learning in Biology

This track highlights the application of machine learning techniques to biological problems. Areas of interest include predictive modeling, classification of biological data, and biomarker discovery.

Track 06
Structural Bioinformatics

This session focuses on the computational analysis of biological macromolecules' structures. Topics include protein structure prediction, molecular docking, and structural alignment.

Track 07
Computational Approaches in Synthetic Biology

This track explores the computational methodologies employed in the design and construction of new biological parts and systems. It includes discussions on gene synthesis, pathway design, and modeling of synthetic circuits.

Track 08
Evolutionary Computation in Biology

This session examines the use of evolutionary algorithms and computational models to study biological evolution. Topics may include phylogenetics, population genetics, and evolutionary dynamics.

Track 09
Data Integration and Visualization in Life Sciences

This track focuses on the integration of diverse biological data sources and the visualization of complex datasets. It aims to enhance understanding through innovative data representation techniques.

Track 10
Computational Pharmacology and Toxicology

This session addresses the computational methods used to predict drug interactions and assess toxicological profiles. Topics include quantitative structure-activity relationship modeling and virtual screening.

Track 11
Ethics and Policy in Computational Biology

This track discusses the ethical implications and policy considerations surrounding computational biology research. It aims to foster dialogue on data privacy, biosecurity, and responsible research practices.