TY - JOUR
T1 - Metagenomics and plant-microbe symbioses
T2 - Microbial community dynamics, functional roles in carbon sequestration, nitrogen transformation, sulfur and phosphorus mobilization for sustainable soil health
AU - Wani, Atif Khurshid
AU - Qadir, Fayzan
AU - Elboughdiri, Noureddine
AU - Rahayu, Farida
AU - Saefudin,
AU - Pranowo, Dibyo
AU - Martasari, Chaireni
AU - Kosmiatin, Mia
AU - Suhara, Cece
AU - Sudaryono, Tri
AU - Prayogo, Yusmani
AU - Yadav, Krishna Kumar
AU - Muzammil, Khursheed
AU - Eltayeb, Lienda Bashier
AU - Alreshidi, Maha Awjan
AU - Singh, Reena
N1 - Publisher Copyright:
© 2024
PY - 2025/9
Y1 - 2025/9
N2 - Biogeochemical cycles are fundamental processes that regulate the flow of essential elements such as carbon, nitrogen, and phosphorus, sustaining ecosystem productivity and global biogeochemical equilibrium. These cycles are intricately influenced by plant-microbe symbioses, which facilitate nutrient acquisition, organic matter decomposition, and the transformation of soil nutrients. Through mutualistic interactions, plants and microbes co-regulate nutrient availability and promote ecosystem resilience, especially under environmental stress. Metagenomics has emerged as a transformative tool for deciphering the complex microbial communities and functional genes driving these cycles. By enabling the high-throughput sequencing and annotation of microbial genomes, metagenomics provides unparalleled insights into the taxonomic diversity, metabolic potential, and functional pathways underlying microbial contributions to biogeochemical processes. Unlike previous reviews, this work integrates recent advancements in metagenomics with complementary omics approaches to provide a comprehensive perspective on how plant-microbe interactions modulate biogeochemical cycles at molecular, genetic, and ecosystem levels. By highlighting novel microbial processes and potential biotechnological applications, this review aims to guide future research in leveraging plant-microbe symbioses for sustainable agriculture, ecosystem restoration, and climate change mitigation.
AB - Biogeochemical cycles are fundamental processes that regulate the flow of essential elements such as carbon, nitrogen, and phosphorus, sustaining ecosystem productivity and global biogeochemical equilibrium. These cycles are intricately influenced by plant-microbe symbioses, which facilitate nutrient acquisition, organic matter decomposition, and the transformation of soil nutrients. Through mutualistic interactions, plants and microbes co-regulate nutrient availability and promote ecosystem resilience, especially under environmental stress. Metagenomics has emerged as a transformative tool for deciphering the complex microbial communities and functional genes driving these cycles. By enabling the high-throughput sequencing and annotation of microbial genomes, metagenomics provides unparalleled insights into the taxonomic diversity, metabolic potential, and functional pathways underlying microbial contributions to biogeochemical processes. Unlike previous reviews, this work integrates recent advancements in metagenomics with complementary omics approaches to provide a comprehensive perspective on how plant-microbe interactions modulate biogeochemical cycles at molecular, genetic, and ecosystem levels. By highlighting novel microbial processes and potential biotechnological applications, this review aims to guide future research in leveraging plant-microbe symbioses for sustainable agriculture, ecosystem restoration, and climate change mitigation.
KW - Metagenomics
KW - Nutrient cycles
KW - Omics
KW - Plant-microbe interactions
KW - Sustainable agriculture
UR - http://www.scopus.com/inward/record.url?scp=105002653199&partnerID=8YFLogxK
U2 - 10.1016/j.biotechadv.2025.108580
DO - 10.1016/j.biotechadv.2025.108580
M3 - Review article
C2 - 40246210
AN - SCOPUS:105002653199
SN - 0734-9750
VL - 82
JO - Biotechnology Advances
JF - Biotechnology Advances
M1 - 108580
ER -