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◆ Advances in protein chemistry and structural biology2026-01-01

Computational structural insights into alternative proteins: The impact of AlphaFold and AI-based prediction.

Shiammala Periyasamy Natarajan, Bagavathi Lakshmi Ramarajan, Rani Sivakumar, Jayaprakashvel Mani

原始摘要(英文原文)· Original abstract
Proteins are fundamental biomolecules composed of amino acids linked by peptide bonds, forming complex macromolecules that determine cellular structure and biological function. The three-dimensional conformation of proteins plays a crucial role in defining their biochemical activity, stability, and interactions. In the emerging field of alternative proteins, such as microbial, algal, plant-based, and precision-fermented proteins, understanding structural organization is essential for improving functional properties including digestibility, nutritional value, texture, and enzymatic performance. Experimental determination of protein structures through conventional techniques remains time-consuming, technically demanding, and expensive. Recent advancements in artificial intelligence have revolutionized protein structure prediction, particularly with the development of AlphaFold by Google DeepMind. AlphaFold integrates deep learning algorithms, attention mechanisms, and evolutionary information derived from multiple sequence alignments to accurately predict spatial relationships among amino acid residues. Its performance has been validated through the Critical Assessment of Structure Prediction (CASP) competitions, demonstrating unprecedented accuracy in computational structure prediction. The application of AlphaFold provides significant opportunities for accelerating research in alternative proteins by enabling rapid structural characterization, enzyme engineering, and functional optimization of novel protein sources. This review highlights the scientific developments that led to AlphaFold, describes its architectural innovations, and discusses its potential applications in alternative protein discovery, design, and processing. Furthermore, current limitations and future perspectives in AI-assisted structural prediction for sustainable protein production are discussed.
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Computational structural insights into alternative proteins: The impact of AlphaFold and AI-based prediction. — 科研速览 Science Skim