Electronic supplementary material

Continental-scale patterns of Cecropia reproductive phenology: Evidence from herbarium specimens

Paul-Camilo Zalamea*, François Munoz, Pablo R. Stevenson, C. E. Timothy Paine, Carolina Sarmiento, Daniel Sabatier and Patrick Heuret

*To whom correspondence should be addressed. e-mail:

Appendix S1: Performance of the randomization test.

We simulated phenological patterns with varying numbers of herbarium specimens to evaluate the performance of the randomization test to detectannualpatterns. We accordingly simulated two datasets, the first made of samples drawn from random data distributed over 12 months, and the second one made of samples drawnfrom data with annual periodicity.

Figure S1 shows the probability of detecting an annual pattern for each simulated dataset. The probability of detecting an annual pattern when the actual pattern is random (first dataset) was about 5%, regardless of sample size (figure S1a). The probability of detecting an annual pattern increased with the sample size (figure S1b). This analysis showed that 15 herbarium specimens is still a low sample size for detecting an annual periodic pattern, but at the same time, if an annual pattern is detected using a low number of collections, the probabilityof misinterpretation is very low. Hence, annual patterns detected from 15 herbarium samples are likely to be true, but we might detect only a subsample of the total annual patterns.

Figure S1 Probability of detecting an annual pattern for (a) simulated random distributed data (the black line represents the 5% limit) and (b) simulated annual data (the black lines represent the 95% and 100% limits).

Appendix S2: The annual component and its corresponding phase in the Fourier spectrum.

If significant, the amplitude of the 12-month component provided in a Fourier spectrum, displays an annual trend in phenology, that is, a single annual alternation of a flowering season (i.e., numerous observations of flowering data) and of a vegetative season(i.e., few or no observations). Figure S2a shows an example of the annual component obtained for C. sciadophylla in the Guiana Shield region. Other components of shorter periods represent, respectively, two alternations per year (6-month period), three alternations per year (4-month period), and so on. If the annual component was clearly predominant against the others, the corresponding phase yielded the position (i.e., month) of the flowering peak within a year (figure S2b).

Figure S2 (a)Frequency of herbarium collections by month (bars) and annual periodic pattern provided in the Fourier spectrum for the first component (black line), for C. sciadophylla in the Guiana Shield region (n = 40). (b) The phase between two annual components represents the lag between their peaks. Here, the flowering peak (dashed line) occurs around October 1st and is associated to a -3 months phase, that is, it occurs 3 months before the reference peak (i.e., January 1st, solid line).

Table S1 Flowering peaks and timing of flowering production between reproductive peaks and the peaks of climatic variables (i.e., precipitation and median temperature) for species-region combinations with significant annual patterns.

Flowering
Region / Species / Peak / Prec. Lag / Temp. Lag
Andes and Central America mountains (climatic region i)
C. mutisiana / Mar / 3.5 mo after / 0.5 mo before
C. obtusifolia / Mar / 5.5 mo before / 2 mo before
C. strigosa / Dec / 1.5 mo before / 0.5 mo before
Dry Central America and Caribbean (climatic region ii)
C. obtusifolia / Apr / 4 mo before / 2.5 mo before
C. peltata / Jul / 1 mo before / 0.5 mo after
C. schreberiana / Apr / 3.5 mo before / 3 mo before
Humid Central America andOrinoquía (climatic region iii)
C. insignis / Mar / 5.5 mo before / 2 mo before
C. peltata / Jun / 2 mo before / 0.5 mo after
Western Amazonia (climatic region iv)
C. distachya / Oct / 6 mo before / 2 mo after
Southern Amazonia (climatic region v)
C. engleriana / May / 5 mo before / 5 mo before
C. utcubambana / Aug / 5 mo after / 5 mo after
C. concolor / Nov / 2 mo after / 1.5 mo after
C. polystachya / Nov / 1.5 mo after / 1 mo after
Guiana Shield (climatic region vi)
C. obtusa / Sep / 5 mo before / same mo
C. palmata / Oct / 5 mo before / 1 mo after
C. sciadophylla / Oct / 5.5 mo before / 1 mo after
Caatinga and Cerrado (climatic region vii)
C. pachystachya / Dec / 3.5 mo after / 0.5 mo before
C. saxatilis / Feb / 1 mo before / 4 mo before

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