Carbon sequestration and sustainable land management through temperate fruit orchards in Himalayan landscapes: implications for climate-resilient agroecosystems

Anthropogenic disturbances, inadequate land management, and deforestation have intensified the soil degradation in the Himalayan region. Temperate fruit plantations in this area exhibit differential abilities to sequester soil organic carbon (SOC). This study examined the dynamics of SOC across seven distinct temperate plantation systems to assess their potential for carbon (C) sequestration and soil degradation mitigation. Soil samples from seven fruit orchard plantations >22 years old were collected at two depth intervals (0–20 cm and 20–60 cm) and analysed for soil C fractions, C management index (CMI), and C sequestration rate. Our results revealed that the different fruit plantation systems significantly influenced the C stabilization pathways. Apricot and walnut systems, characterized by high litter quality and deeper rooting pattern, promoted the accumulation of total organic C (TOC) at surface (15.30 and 15.16 g kg −1 , respectively) and subsurface (8.22 and 8.01 g kg −1 , respectively) depth. The apricot soils, elevated active C pools in surface and subsurface soil (10.14 and 4.89 g kg −1 , respectively) indicated rapid nutrient cycling and active microbial turnover. Walnut and plum plantations accumulated more inorganic C, possibly due to pedogenic carbonate formation under low soil moisture regimes. Enhanced soil functionality and management efficiency were further highlighted by the elevated CMI values observed in the apricot and peach systems. In surface soil, the highest rates of carbon sequestration were in apricot and walnut plantations, with values of 0.54 and 0.53 Mg C ha −1 yr −1 , respectively. These findings provide evidence-based guidance for sustainable land management and climate-resilient agricultural planning in mountainous landscapes and offer broader relevance for policy frameworks promoting carbon-smart agroecosystems in environmentally vulnerable regions.

Authors

Institutions

Publication Details

Journal
Environmental Sciences Europe
Published
2026-10-05
DOI
https://doi.org/10.1186/s12302-026-01510-9
Primary Topic
Soil Carbon and Nitrogen Dynamics
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
OCT
article

Carbon sequestration and sustainable land management through temperate fruit orchards in Himalayan landscapes: implications for climate-resilient agroecosystems

Surya Prakash Yadav, Nishant Kumar Sinha, Prasenjit Ray, Tapan Jyoti Purakayastha et al.
Environmental Sciences Europe
Soil Carbon and Nitrogen Dynamics
article

Carbon sequestration and sustainable land management through temperate fruit orchards in Himalayan landscapes: implications for climate-resilient agroecosystems

Surya Prakash Yadav, Nishant Kumar Sinha, Prasenjit Ray, Tapan Jyoti Purakayastha, Gaurav Mishra, Rosin Kunnamuzhath Gopi, Sushil Kumar Kharia, Anil Sharma, Pooja Jangra, Abhishek Jangir, Arun Kumar, Sarvendra Kumar, Sandeep Kumar
article en

Abstract

Anthropogenic disturbances, inadequate land management, and deforestation have intensified the soil degradation in the Himalayan region. Temperate fruit plantations in this area exhibit differential abilities to sequester soil organic carbon (SOC). This study examined the dynamics of SOC across seven distinct temperate plantation systems to assess their potential for carbon (C) sequestration and soil degradation mitigation. Soil samples from seven fruit orchard plantations >22 years old were collected at two depth intervals (0–20 cm and 20–60 cm) and analysed for soil C fractions, C management index (CMI), and C sequestration rate. Our results revealed that the different fruit plantation systems significantly influenced the C stabilization pathways. Apricot and walnut systems, characterized by high litter quality and deeper rooting pattern, promoted the accumulation of total organic C (TOC) at surface (15.30 and 15.16 g kg −1 , respectively) and subsurface (8.22 and 8.01 g kg −1 , respectively) depth. The apricot soils, elevated active C pools in surface and subsurface soil (10.14 and 4.89 g kg −1 , respectively) indicated rapid nutrient cycling and active microbial turnover. Walnut and plum plantations accumulated more inorganic C, possibly due to pedogenic carbonate formation under low soil moisture regimes. Enhanced soil functionality and management efficiency were further highlighted by the elevated CMI values observed in the apricot and peach systems. In surface soil, the highest rates of carbon sequestration were in apricot and walnut plantations, with values of 0.54 and 0.53 Mg C ha −1 yr −1 , respectively. These findings provide evidence-based guidance for sustainable land management and climate-resilient agricultural planning in mountainous landscapes and offer broader relevance for policy frameworks promoting carbon-smart agroecosystems in environmentally vulnerable regions.

Environmental Sciences Europe
Indian Agricultural Statistics Research Institute (IN), Indian Council of Forestry Research and Education (IN), Indian Institute of Soil Science (IN), Swami Keshwanand Rajasthan Agricultural University (IN), Central Potato Research Institute (IN), ICAR-National Bureau of Soil Survey and Land Use Planning (IN), Indian Agricultural Research Institute (IN), Manipal University Jaipur
Openalex Percentile: Top 14%
Soil Carbon and Nitrogen Dynamics
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.