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April 10, 2026Ecology and Evolution2 citationsOpen Access

Fern Gametophytes Exhibit Distinct Patterns of Niche Expansion and Convergence in Ecophysiological Functioning

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CKChristopher P. KriegWake Forest UniversityJWJacob L. WattsUniversity of Colorado BoulderSCSally M. ChambersEastern Kentucky University

Key Points

  • This research aims to explore the ecological relationship between fern gametophytes and sporophytes, particularly focusing on their niche occupancy and physiological functions.
  • Analyzed spatial and climatic data of fern species
  • Examined gametophyte and sporophyte ecology
  • Investigated physiological mechanisms influencing niche patterns
  • 57% of fern species have gametophytes in novel climate niches relative to sporophytes
  • Gametes exhibit strong convergence in ecophysiological functions
  • Photosynthetic rate in gametophytes correlates with atmospheric water demand and precipitation

Abstract

ABSTRACT Ferns exhibit extraordinary ecological diversity, and their independent gametophyte and sporophyte stages make them distinct among other plant groups, yet the extent to which gametophyte and sporophyte ecology are coordinated is unknown. Here, we integrated spatial and climatic data to test the hypothesis that independent fern gametophytes occupy novel climatic niche space relative to their sporophytes. We also examined the physiological mechanisms in the gametophyte life stage that may underpin spatial patterns of fern ecology. We discovered that 57% of species examined have gametophytes that occupy novel climate niche space relative to their sporophytes and that this expansion occurs along specific axes of climate variation. We also discovered evidence of strong convergence in gametophyte ecophysiological function across broad environmental gradients. In particular, we found that gametophyte photosynthetic rate per mass was strongly linearly correlated to atmospheric water demand (e.g., potential evapotranspiration) and monotonically correlated to precipitation inputs. Taken together, these discoveries represent previously uncharacterized ecology and potential mechanisms that may drive spatial patterns of fern biodiversity.

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Cite This Study

Krieg et al. (2026) studied this question.

synapsesocial.com/papers/69d893c96c1944d70ce04bechttps://doi.org/10.1002/ece3.73324
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