scholarly journals Variation in the chloroplast DNA of Swiss stone pine (Pinus cembraL.) reflects contrasting post-glacial history of populations from the Carpathians and the Alps

2009 ◽  
Vol 36 (9) ◽  
pp. 1798-1806 ◽  
Author(s):  
Maria Höhn ◽  
Felix Gugerli ◽  
Peter Abran ◽  
György Bisztray ◽  
Anna Buonamici ◽  
...  
2020 ◽  
Author(s):  
Elena Serra ◽  
Pierre G. Valla ◽  
Natacha Gribenski ◽  
Fabio Magrani ◽  
Julien Carcaillet ◽  
...  

<p>Mountain glaciers are useful quantitative paleoclimate proxies because of their mass-balance being sensitive to both temperature and precipitation. Paleoglacial reconstructions in the Alps, together with other paleoclimate proxies<sup>[1]</sup>, suggest a shift in Alpine atmospheric circulation during the Last Glacial Maximum (LGM), with a change from northerly (Atlantic) to south-westerly (Mediterranean) moisture advection<sup>[2]</sup>. However, the post-LGM reorganization of the atmospheric circulation system in terms of both amplitude and timing remains elusive, as well as the resulting glacier response in the Alps<sup>[3,4]</sup>.</p><p>This study focuses on Aosta Valley and its tributaries (SW Alps, Italy). Few chronological constraints are available for the post-LGM glacial history of the region, mainly related to the Ivrea Amphitheatre (terminal extent of Pleistocene glaciations)<sup>[5]</sup> and the Mont-Blanc massif<sup>[6]</sup>. We aim to quantify the potential variability in glacier responses for the different massif catchments of Aosta Valley, our working hypothesis being that they have distinct geomorphic (e.g. hypsometry) and climatic conditions (e.g. aspect, moisture sources). Following a detailed geomorphological mapping of glacial landforms and deposits, we sampled moraine boulders and glacially-polished bedrock for <em>in-situ</em> <sup>10</sup>Be surface exposure dating in 3 main massifs: Mont-Blanc (Courmayeur), Matterhorn (Valpelline) and Gran Paradiso (Val di Cogne and Valsavarenche). In addition, we also investigated the confluence between Aosta Valley and Gran Paradiso valleys (Saint Pierre area). Morphometric analyses were conducted to investigate the possible influence of local factors (e.g. hypsometry and aspect) on glacier fluctuations, before isolating a climatic signal from our paleoglacial reconstructions.</p><p>Our <sup>10</sup>Be chronology and boulder provenance results testify that glaciers from Mont-Blanc were lastly occupying the Aosta Valley in Saint Pierre at ca. 15 ka, while Gran Paradiso glaciers had already retreated within tributary valleys. In the upper Aosta Valley, Mont-Blanc glaciers retreat is marked by at least<sup>[7]</sup> two Late-glacial stages nearby Courmayeur at ca. 14 and 11 ka. Bedrock deglaciation profiles in Valpelline (SW of Matterhorn) record an onset of ice-thinning at ca. 14 ka, well after glacier retreat from the Ivrea Amphitheatre (20-24 ka)<sup>[5]</sup>. This result agrees with other studies from high Alpine passes<sup>[9]</sup>, supporting the idea that glaciers thinning within the high Alps clearly postdated the rapid post-LGM deglaciation in the foreland. Final deglaciation of Valpelline occurred at ca. 10-11 ka (Younger Dryas), roughly synchronous with the final glacier retreat in Courmayeur. Additional <sup>10</sup>Be samples from the Gran Paradiso valleys are under process to further assess potential spatial variability in post-LGM glacier fluctuations between the main northern and southern massifs. Finally, paleoglacial reconstructions and geochronology constraints will be included in ice numerical simulations to test the potential influence of precipitation changes on glacier retreat within the Aosta Valley.</p><p><strong>References</strong></p><p><sup>[1]</sup>Heiri, O. et al., 2014, Quaternary Science Reviews.</p><p><sup>[2]</sup>Florineth, D. & Schlüchter, C., 2000, Quaternary Research.</p><p><sup>[3]</sup>Luetscher, M. et al., 2015, Nature Communications.</p><p><sup>[4]</sup>Monegato, G. et al., 2017, Scientific reports.</p><p><sup>[5]</sup>Gianotti, F. et al., 2015, Alpine and Mediterranean Quaternary.</p><p><sup>[6]</sup>Wirsig, C. et al., 2016, Quaternary Science Reviews.</p><p><sup>[7]</sup>Porter, S. & Orombelli, G., 1982, Boreas.</p><p><sup>[8]</sup>Ivy-ochs, S., 2015, Cuadernos de Investigación Geográfica.</p><p><sup>[9]</sup>Hippe, K. et al., 2014, Quaternary Geochronology.</p>


2007 ◽  
Vol 56 (1-6) ◽  
pp. 148-158 ◽  
Author(s):  
I. Blada ◽  
F. Popescu

Summary After the nursery testing, twelve Swiss stone pine (Pinus cembra L.) provenances from the Alps and Carpathian Mountains were planted out at two sites located at high elevation in the Southern and Northern Carpathians. Total height growth (H), annual height growth (h), root collar diameter (RCD), branches per whorl (BW) and survival (SV) were measured and analyzed. Analysis of variance showed highly significant (p < 0.01; p < 0.001) differences between provenances for all traits, except survival, suggesting that selection at the provenance level could be possible. Also, over locations analysis revealed significant genotype x environment interaction, demonstrating that some provenances react differently to environmental conditions and, selection should take this into account. The phenotypic coefficient of variation was moderate for growth and high for number of branches per whorl suggesting that selection within provenance can also be applied. Finding of significant and highly significant age-age and trait-trait phenotypic correlations indicated that early and indirect selection in Swiss stone pine species is possible. According to DUNCAN’s multiple range test the best performing provenances of the two mountain ranges were selected for operational planting and breeding programmes. The results of this study validate that a very slow growing species, such as Swiss stone pine may still possess very high genetic variation in growth rate; consequently, this trait can be improved. Finally, an attempt has been made to develop a seed transfer guidelines for the species by using the pattern of geographic variation as a basis.


2006 ◽  
Vol 157 (6) ◽  
pp. 196-207
Author(s):  
Jacques Doutaz ◽  
Harald Bugmann ◽  
Hans-Ulrich Frey

Swiss stone pine (Pinus cembra L.) is a species that typically grows in continental areas. Nevertheless it can also be found in a few oceanic areas on the north side of the Alps, such as in the Forêt du Lapé (Commune of Charmey, FR). In this forest the majority of the Swiss stone pines are located on large boulders,particularly on the margins of the summit of the boulders, i.e. in those parts where the snow melts the earliest in spring. The micro-relief seems to be a very important factor, because it tends to reproduce continental conditions even if the mesoclimate is oceanic. This microscale continentality – involved by the micro-relief – could be an explanation for the presence of Swiss stone pine in the oceanic parts of the Alps.


2010 ◽  
Vol 29 (25-26) ◽  
pp. 3630-3643 ◽  
Author(s):  
Arjen P. Stroeven ◽  
Derek Fabel ◽  
Alexandru T. Codilean ◽  
Johan Kleman ◽  
John J. Clague ◽  
...  

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