Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Network architecture and vulnerability of macroalgal epiphyte-host interactions in Caribbean coastal ecosystems: implications for marine conservation

View through CrossRef
Background and Aims Tropical coastal marine ecosystems depend critically on macroalgal epiphyte–host interaction networks to sustain biodiversity, primary production, and ecosystem services, yet the architecture and vulnerability of these networks remain poorly characterised in the Caribbean. This study aimed to characterise the topological structure of the epiphyte–host interaction network in Cuba's coastal marine ecosystems, model the ecological determinants of epiphytic richness, quantify niche overlap among hosts, assess structural robustness to host species loss, and develop an Integrated Community Vulnerability Index (Vtotal) to guide conservation prioritisation. Methods A bipartite network was constructed from a comprehensive synthesis database comprising 62 host taxa and 321 epiphytic macroalgal species across eight coastal habitat types. Network topology was analysed using degree distribution modelling, Louvain community detection, and centrality metrics. Host habitat distributions were inferred via a hierarchical Bayesian model validated against 18 hosts of known distribution. Epiphytic richness was modelled using a Bayesian negative binomial regression with inferred habitat breadth and betweenness centrality as predictors. Niche overlap was assessed with Jaccard similarity and Monte Carlo permutation tests. Structural robustness was evaluated through sequential host-removal simulations under three strategies. Vtotal was calculated by integrating habitat environmental vulnerability with network-structural irreplaceability. Key Results The network comprised 396 nodes and 1,089 edges (connectance = 0.0315), with degree distribution best described by a truncated power law. Eighteen modules were identified (Q = 0.424). Betweenness centrality (β = 0.957) was a stronger predictor of epiphytic richness than habitat breadth (β = 0.524). Overall Jaccard similarity was extremely low (mean = 0.027), indicating high functional complementarity. Targeted host removal caused network fragmentation after only 14.6% of hosts were removed, versus 64.6% under random removal. Rhizophora mangle, Thalassia testudinum, and Digenea simplex emerged as irreplaceable structural hubs. Mangrove module M9 attained the highest Vtotal (4.264). Conclusions The epiphyte–host network is architecturally efficient yet ecologically fragile, with a disproportionate dependence on a small set of engineering host species whose loss would trigger non-linear cascades of secondary epiphyte extinctions and ecosystem service degradation. The Integrated Vulnerability Index provides a transferable, interaction-based framework for conservation prioritisation in tropical marine systems facing accelerated environmental change.
Title: Network architecture and vulnerability of macroalgal epiphyte-host interactions in Caribbean coastal ecosystems: implications for marine conservation
Description:
Background and Aims Tropical coastal marine ecosystems depend critically on macroalgal epiphyte–host interaction networks to sustain biodiversity, primary production, and ecosystem services, yet the architecture and vulnerability of these networks remain poorly characterised in the Caribbean.
This study aimed to characterise the topological structure of the epiphyte–host interaction network in Cuba's coastal marine ecosystems, model the ecological determinants of epiphytic richness, quantify niche overlap among hosts, assess structural robustness to host species loss, and develop an Integrated Community Vulnerability Index (Vtotal) to guide conservation prioritisation.
Methods A bipartite network was constructed from a comprehensive synthesis database comprising 62 host taxa and 321 epiphytic macroalgal species across eight coastal habitat types.
Network topology was analysed using degree distribution modelling, Louvain community detection, and centrality metrics.
Host habitat distributions were inferred via a hierarchical Bayesian model validated against 18 hosts of known distribution.
Epiphytic richness was modelled using a Bayesian negative binomial regression with inferred habitat breadth and betweenness centrality as predictors.
Niche overlap was assessed with Jaccard similarity and Monte Carlo permutation tests.
Structural robustness was evaluated through sequential host-removal simulations under three strategies.
Vtotal was calculated by integrating habitat environmental vulnerability with network-structural irreplaceability.
Key Results The network comprised 396 nodes and 1,089 edges (connectance = 0.
0315), with degree distribution best described by a truncated power law.
Eighteen modules were identified (Q = 0.
424).
Betweenness centrality (β = 0.
957) was a stronger predictor of epiphytic richness than habitat breadth (β = 0.
524).
Overall Jaccard similarity was extremely low (mean = 0.
027), indicating high functional complementarity.
Targeted host removal caused network fragmentation after only 14.
6% of hosts were removed, versus 64.
6% under random removal.
Rhizophora mangle, Thalassia testudinum, and Digenea simplex emerged as irreplaceable structural hubs.
Mangrove module M9 attained the highest Vtotal (4.
264).
Conclusions The epiphyte–host network is architecturally efficient yet ecologically fragile, with a disproportionate dependence on a small set of engineering host species whose loss would trigger non-linear cascades of secondary epiphyte extinctions and ecosystem service degradation.
The Integrated Vulnerability Index provides a transferable, interaction-based framework for conservation prioritisation in tropical marine systems facing accelerated environmental change.

Related Results

Predicting massive floating macroalgal blooms in the regional sea
Predicting massive floating macroalgal blooms in the regional sea
Increasingly severe and massive floating macroalgal blooms pose significant challenges to the prediction and management of coastal and ocean environment. This study introduces the ...
COASTAL ENGINEERING 2000
COASTAL ENGINEERING 2000
*** Available Only Through ASCE *** http://ascelibrary.aip.org/browse/asce/vol_title.jsp?scode=C This Proceedings contains more than 300 papers pre...
The architecture of differences
The architecture of differences
Following in the footsteps of the protagonists of the Italian architectural debate is a mark of culture and proactivity. The synthesis deriving from the artistic-humanistic factors...
Rapidly increasing macroalgal cover not related to herbivorous fishes on Mesoamerican reefs
Rapidly increasing macroalgal cover not related to herbivorous fishes on Mesoamerican reefs
Long-term phase shifts from coral to macroalgal dominated reef systems are well documented in the Caribbean. Although the impact of coral diseases, climate change and other factors...
Spatial Analysis of Coastal Vulnerability Indicators Along the Kerala Coast, India
Spatial Analysis of Coastal Vulnerability Indicators Along the Kerala Coast, India
Coastal regions are globally threatened by increasing inundation risks due to climate-induced sea-level rise, intensifying storm surges, and anthropogenic pressures. Understanding ...
Can macroalgae contribute to blue carbon? An Australian perspective
Can macroalgae contribute to blue carbon? An Australian perspective
AbstractMacroalgal communities in Australia and around the world store vast quantities of carbon in their living biomass, but their prevalence of growing on hard substrata means th...
Collaborative Citizen Science to Support Coastal Management
Collaborative Citizen Science to Support Coastal Management
Coastal communities in North West England face numerous anthropogenic challenges, including high vulnerability to the impacts of climate change, namely enhanced coastal erosion and...
Coastal Vulnerability Assessment Based on Multi-Hazardous Events. Case study: Northwestern Coastline of Guinea-Bissau (NC-GB)
Coastal Vulnerability Assessment Based on Multi-Hazardous Events. Case study: Northwestern Coastline of Guinea-Bissau (NC-GB)
Abstract Guinea-Bissau coastlines are found highly vulnerable to coastal hazards, and this vulnerability will likely increase under future climate changes scenarios. In add...

Back to Top