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Spatio-temporal Patterns of Orchids Flowering in Cameroonian Rainforests

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Specialty Biophysics
Date 2018 Sep 15
PMID 30215186
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Abstract

We characterized the flowering patterns of 45 epiphytic orchid species occurring in Cameroonian rainforests to explore the environmental and evolutionary forces driving their phenology. We used a dataset of 3470 flowering events recorded over a period of 11 years in the Yaoundé living collection (82% of the flowering events) and from in situ observations (18% of the flowering events) to (i) describe flowering frequency and timing and synchronization among taxa; (ii) test flowering patterns for phylogenetic relatedness at the generic level; and (iii) investigate the spatial patterns of phenology. An annual flowering pattern prevailed among the species selected for this study. The species-rich African genera Angraecum and Polystachya are characterized by subannual and annual frequency patterns, respectively. However, in terms of flowering time, no phylogenetic signal was detected for the four most diverse genera (Ancistrorhynchus, Angraecum, Bulbophyllum, and Polystachya). Results suggest also an important role of photoperiod and precipitation as climatic triggers of flowering patterns. Moreover, 16% of the taxa cultivated ex situ, mostly Polystachya, showed significant differences in flowering time between individuals originating from distinct climatic regions, pointing toward the existence of phenological ecotypes. Phenological plasticity, suggested by the lack of synchronized flowering in spatially disjunct populations of Polystachya, could explain the widespread radiation of this genus throughout tropical Africa. Our study highlights the need to take the spatial pattern of flowering time into account when interpreting phylogeographic patterns in central African rainforests.

References
1.
Vaz A, Figueiredo-Ribeiro Rd R, Kerbauy G . Photoperiod and temperature effects on in vitro growth and flowering of P. pusilla, an epiphytic orchid. Plant Physiol Biochem. 2004; 42(5):411-5. DOI: 10.1016/j.plaphy.2004.03.008. View

2.
Munguia-Rosas M, Ollerton J, Parra-Tabla V, de-Nova J . Meta-analysis of phenotypic selection on flowering phenology suggests that early flowering plants are favoured. Ecol Lett. 2011; 14(5):511-21. DOI: 10.1111/j.1461-0248.2011.01601.x. View

3.
Heuertz M, Duminil J, Dauby G, Savolainen V, Hardy O . Comparative phylogeography in rainforest trees from Lower Guinea, Africa. PLoS One. 2014; 9(1):e84307. PMC: 3885573. DOI: 10.1371/journal.pone.0084307. View

4.
Borchert R, Renner S, Calle Z, Navarrete D, Tye A, Gautier L . Photoperiodic induction of synchronous flowering near the Equator. Nature. 2005; 433(7026):627-9. DOI: 10.1038/nature03259. View

5.
Antonovics J . Evolution in closely adjacent plant populations X: long-term persistence of prereproductive isolation at a mine boundary. Heredity (Edinb). 2006; 97(1):33-7. DOI: 10.1038/sj.hdy.6800835. View