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1. Ecogeographical rules and the macroecology of food webs

3. La dermite d’interface dans le lichen plan cutané est médiée par l’activation de la voie des interférons

4. L’analyse transcriptomique en séquençage ARN révèle une inflammation commune médiée par les interférons dans le syndrome de VEXAS, le syndrome de Sweet et les myelodysplasia cutis

6. Effet d’un traitement par anifrolumab sur la signature inflammatoire dans le lupus discoïde

7. La réaction lichénoïde cutanée chronique du greffon contre l’hôte est marquée par une forte signature interféron avec un effet prometteur des anti-IFNAR1 sur l’inflammation locale

10. Key Questions for Next-Generation Biomonitoring

11. Inferring community assembly processes from macroscopic patterns using dynamic eco-evolutionary models and Approximate Bayesian Computation (ABC)

15. Dissimilarity of species interaction networks: quantifying the effect of turnover and rewiring

17. Interactions between immunocompetence, somatic condition and parasitism in the chub Leuciscus cephalus in early spring.

21. MEGAN Community Edition - Interactive Exploration and Analysis of Large-Scale Microbiome Sequencing Data

22. Publication-driven consistency in food web structures: Implications for comparative ecology.

23. Multilayer biological networks to upscale marine research to global change-smart management and sustainable resource use.

24. Spatially explicit predictions of food web structure from regional-level data.

26. Save lives in the next pandemic: ensure vaccine equity now.

27. The coevolutionary mosaic of bat betacoronavirus emergence risk.

28. Author Correction: A global biodiversity observing system to unite monitoring and guide action.

29. A global biodiversity observing system to unite monitoring and guide action.

30. Postdoctoral scientists are mentors, and it is time to recognize their work.

31. What constrains food webs? A maximum entropy framework for predicting their structure with minimal biases.

32. Network embedding unveils the hidden interactions in the mammalian virome.

33. Shortcomings of reusing species interaction networks created by different sets of researchers.

34. Mismatch between IUCN range maps and species interactions data illustrated using the Serengeti food web.

35. Optimising predictive models to prioritise viral discovery in zoonotic reservoirs.

36. The Global Virome in One Network (VIRION): an Atlas of Vertebrate-Virus Associations.

37. The science of the host-virus network.

38. A roadmap towards predicting species interaction networks (across space and time).

39. Refocusing multiple stressor research around the targets and scales of ecological impacts.

40. Beta and phylogenetic diversities tell complementary stories about ecological networks biogeography.

41. Environment-host-microbial interactions shape the Sarracenia purpurea microbiome at the continental scale.

42. Optimal transportation theory for species interaction networks.

43. Revisiting the Links-Species Scaling Relationship in Food Webs.

44. Testing predictability of disease outbreaks with a simple model of pathogen biogeography.

45. Revealing biases in the sampling of ecological interaction networks.

46. The marine fish food web is globally connected.

47. Ecological Data Should Not Be So Hard to Find and Reuse.

48. Analysing ecological networks of species interactions.

49. Identifying a common backbone of interactions underlying food webs from different ecosystems.

50. Sustainable computational science: the ReScience initiative.

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