Predator diversity keeps ecosystems healthy

Publicly released:
New Zealand
Kārearea, the New Zealand Falcon. Photo by Diego Carena-Santiago, some rights reserved (CC-BY-NC)
Kārearea, the New Zealand Falcon. Photo by Diego Carena-Santiago, some rights reserved (CC-BY-NC)

Predators such as kārearea, ruru, and sharks are vital to keep ecosystems functioning, new research from the University of Waikato finds. The study involved over 300 food webs across marine, freshwater and soil ecosystems. Researchers found ecosystems with more species diversity, especially predators, support stronger energy flow through food webs. The authors say conservation efforts should protect the relationships between species, not just individual plants and animals, to maintain a resilient ecosystem.

News release

From: University of Waikato

Nature's hidden connections: Waikato University study reveals what keeps ecosystems healthy


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2 July 2026 – Healthy ecosystems depend on more than just having lots of species – they rely on the complex relationships between plants, prey and predators, according to new international research led by the University of Waikato.


Published today in Nature – the world’s leading multidisciplinary science journal – the study found that ecosystems with greater diversity of species – and particularly a greater diversity of predators – function more effectively, helping maintain natural process that people rely on, such as pest control, food production and ecosystem stability.


Lead author Dr Andrew Barnes says ecosystems are powered by the relationships between species – who eats who, how energy moves through the food web and the important role predators play in keeping everything in balance.


“When predators disappear through habitat loss, pollution or climate change, those effects can ripple through an entire ecosystem and weaken important functions, including natural pest control, food production, climate regulation and ecosystem stability,” Dr Barnes says.


The research found that predators such as kārearea (NZ falcon), ruru (morepork) and sharks are vital to the functions of ecosystems, which humanity relies on, calling on greater prioritisation on conservation and environmental policy.


Working with researchers from the German Centre for Integrative Biodiveristy Research (iDiv) and more than 20 institutions worldwide, the group examined more than 300 food webs from oceans, lakes, streams and soils around the world and found that there was up to 70 times more predation when ecosystems had a diverse range of species.


The study is the most comprehensive to date examining how biodiversity influences ecosystem functioning across entire food webs rather than focusing on a single group of organisms.


While New Zealand has made significant progress protecting threatened species and controlling invasive predators and weeds, Dr Barnes says conservation also needs to consider the complex food webs that connect species.


“Protecting biodiversity isn’t just about saving individual plants and animals. It’s also about protecting the relationships between them.”


Dr Barnes says biodiversity conservation has often been more about saving individual species, New Zealand policies need to protect the complex food webs that allow ecosystems to function and understanding how these species interact with one another could help guide more effective conservation and restoration.


While the full impact of invasive predators on New Zealand's food webs is not yet fully understood, they are likely to be having significant effects on native biodiversity and ecosystem resilience.


“A better understanding of New Zealand's food webs could help strengthen conservation efforts and improve outcomes for native species.”

Multimedia

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Lead author Dr Andrew Barnes
Lead author Dr Andrew Barnes

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Research University of Waikato, Web page
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Nature
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Funder: A.D.B. acknowledges support by the Marsden Fund Council from Government funding managed by Royal Society Te Apārangi (grant no. MFP-23-UOW-029). We acknowledge funding by the German Research Foundation (DFG-FOR 5000, Ei 862/29-1) and the Portuguese Foundation for Science and Technology (UIDB/04326/2020, UIDP/04326/2020, LA/P/0101/2020, UIDB/04292/2020, CEECINST/00146/2018/CP1493/CT0007). V.S.S. was supported by NSF/FAPESP grant 2022/01452-1. D.I.K. was supported by the Russian Science Foundation (project no. 25-24-00639). M.B. was funded through BiodivRestore ERA-NET Cofund (grant no.101003777) and the Federal Ministry of Education and Research Germany (16LW0174K). P.K. was supported by the NERC Pushing the Frontiers grant (NE/Y001184/1). S.K. acknowledges support from (www.coastclim.org), and the Research Council of Finland (grant no. 361049). D.G.-C. was funded by the New Zealand Biological Heritage National Science Challenge and the Austrian Science Fund (grant reference FWF ESPRIT ESP-671). M.C.N. acknowledges the Research Council of Finland University Profiling funding for InterEarth (grant no. 353218). R.A.S. was funded by the Russian Science Foundation, grant no. 23-14-00201. S.L.E. was supported by NSF grants DEB-9207498, DEB-9629268, DEB-0212315 and the USDA Forest Service Northern Research Station. D.M.P. was supported by the British Ecological Society grants SR21\100750 & 4973-6013. A.J.T. was supported by the Canada Research Chairs Programme and a Natural Sciences and Engineering Research Council of Canada Discovery Grant (RGPIN-2023-03977).
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