Completed Plants, Animals & Ecology Climate, Earth & Environment

Biodiversity and land-use impacts on tropical ecosystem function (bali)

In plain English

AI plain-English summary

Tropical forests are being cleared, degraded, and converted to oil palm plantations across Southeast Asia, and a team of UK and Malaysian researchers is now tracking exactly which species vanish and how that loss rewires the forests' ability to cycle carbon and nutrients. The problem is that ecologists cannot currently predict how human-driven biodiversity loss alters the fundamental chemical processes that keep tropical ecosystems functioning—processes like decomposition, soil carbon storage, and nutrient recycling. Without that knowledge, climate and land-use models remain unreliable. The consortium will manipulate key organisms—trees, lianas, fungi, termites, and ants—at a large-scale experimental site in Malaysian Borneo, then use airborne sensors to map leaf traits across entire landscapes. If successful, the work will produce the first integrated picture of how biodiversity loss cascades through a tropical forest's biogeochemistry. This is primarily fundamental science, but the findings could eventually improve the models that governments and conservation agencies use to decide which forests to protect and how to restore degraded land.

View original technical description
Anthropogenic disturbance and land-use change in the tropics is leading to irrevocable changes in biodiversity and substantial shifts in ecosystem biogeochemistry. Yet, we still have a poor understanding of how human-driven changes in biodiversity feed back to alter biogeochemical processes. This knowledge gap substantially restricts our ability to model and predict the response of tropical ecosystems to current and future environmental change. There are a number of critical challenges to our understanding of how changes in biodiversity may alter ecosystem processes in the tropics; namely: (i) how the high taxonomic diversity of the tropics is linked to ecosystem functioning, (ii) how changes in the interactions among trophic levels and taxonomic groups following disturbance impacts upon functional diversity and biogeochemistry, and (iii) how plot-level measurements can be used to scale to whole landscapes. We have formed a consortium to address these critical challenges to launch a large-scale, replicated, and fully integrated study that brings together a multi-disciplinary team with the skills and expertise to study the necessary taxonomic and trophic groups, different biogeochemical processes, and the complex interactions amongst them. To understand and quantify the effects of land-use change on the activity of focal biodiversity groups and how this impacts biogeochemistry, we will: (i) analyse pre-existing data on distributions of focal biodiversity groups; (ii) sample the landscape-scale treatments at the Stability of Altered Forest Ecosystems (SAFE) Project site (treatments include forest degradation, fragmentation, oil palm conversion) and key auxiliary sites (Maliau Basin - old growth on infertile soils, Lambir Hills - old growth on fertile soils, Sabah Biodiversity Experiment - rehabilitated forest, INFAPRO-FACE - rehabilitated forest); and (iii) implement new experiments that manipulate key components of biodiversity and pathways of belowground carbon flux. The manipulations will focus on trees and lianas, mycorrhizal fungi, termites and ants, because these organisms are the likely agents of change for biogeochemical cycling in human-modified tropical forests. We will use a combination of cutting-edge techniques to test how these target groups of organisms interact each other to affect biogeochemical cycling. We will additionally collate and analyse archived data on other taxa, including vertebrates of conservation concern. The key unifying concept is the recognition that so-called 'functional traits' play a key role in linking taxonomic diversity to ecosystem function. We will focus on identifying key functional traits associated with plants, and how they vary in abundance along the disturbance gradient at SAFE. In particular, we propose that leaf functional traits (e.g. physical and chemical recalcitrance, nitrogen content, etc.) play a pivotal role in determining key ecosystem processes and also strongly influence atmospheric composition. Critically, cutting-edge airborne remote sensing techniques suggest it is possible to map leaf functional traits, chemistry and physiology at landscape-scales, and so we will use these novel airborne methods to quantify landscape-scale patterns of forest degradation, canopy structure, biogeochemical cycling and tree distributions. Process-based mathematical models will then be linked to the remote sensing imagery and ground-based measurements of functional diversity and biogeochemical cycling to upscale our findings over disturbance gradients.

View the original record at the funder ↗

Researchers

David Francis Robert Philip Burslem (Principal Investigator)David Johnson (Co-Investigator)Liz Baggs (Co-Investigator)Peter Smith (Co-Investigator)Yit Arn Teh (Principal Investigator)

Related Research

Grants with similar aims, by meaning.

Biodiversity and Ecosystem Processes in Human-Modified Tropical Forests
Biodiversity, ecosystem functions and policy across a tropical forest modification gradient
Tropical forests responses to a changing climate: a quest at the interface between trait-based ecology, forest dynamics and remote sensing
Combining long-term field data and remote sensing to test how tree diversity influences aboveground biomass recovery in logged tropical forests
Biodiversity and ecosystem functioning in degraded and recovering Amazonian and Atlantic forests

Original classification

Research Grant

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.