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12篇 您的检索式:作者名="Gehler"
    题名 作者 年代 出处 被引量
1p75 neurotrophin receptor signaling regulates growth cone filopodial dynamics through modulating RhoA activity 显示文摘Gehler S Gallo G VeienE 2004J Neurosci2004,24,:1
2[68Ga]-DOTATOC-PET/ CT for meningioma IMRT treatment planning显示文摘Gehler B Paulsen F Oksuz MO 0,,:1
3Bi-directional signaling: extracellular matrix and integrin regulation of breast tumor progres- sion显示文摘Gehler S Ponik SM Riching KM 2013Crit Rev Eukaryot Gene Expr2013,23,2:1
4975 neurot rophin receptor signaling regulates growt h cone filopodial dynamics through modulating RhoA activity显示文摘Gehler S Gallo G Veien E 2004J Neurosci2004,24,8:1
5Activation of proteolysis by calpains and structural changes in human paroxysmal and persistent atrial fibrillation 显示文摘Brundel BJJM Ausma J van Gehler IC 2002Cardiovasc Res2002,54,2:1
6p75 neurotrophin receptor signaling regulates growth cone filopodial dynamics through modulating RhoA activity 显示文摘Gehler S Gallo G Veien E Letourneau PC 2004J Neurosci2004,24,18:1
7Brain-derived neurotrophic factor regulation of retinal growth cone fllopodial dynamics is mediated through actin depolymerizing factor/cofilin 显示文摘Gehler S Shaw AE Sarmiere PD Bamburg JR Letourneau PC 2004J Neurosci2004,24,10:1
8Abstract 显示文摘Hammon F Gehlers S Elsen M 1997Focusing Folio1997,15,:1
9p75 neurotrophin receptor signaling regulates growth cone filopodial dynamics through modulating RhoA activity显示文摘Gehler S Gallo G Veien E Letourneau PC 2004J Neurosci2004,24,18:1
10p75 neurotrophin receptor signaling regulates growth cone filopodial dynamics through modulating RhoA activity显示文摘Gehler S Gallo G Veien E 0,,:1
11p75 neurotrophin receptor signaling regulates growth cone filopodial dynamics through modulating RhoA activity显示文摘Gehler S Gallo G Veien E 2004J Neurosci2004,24,8:1
12How diverse were ferns in the Baltic amber forest?显示文摘Diverse temperate forest types and a high atmospheric humidity have recently been suggested for the Eocene source area of Baltic amber. However, ferns are astonishingly rare as inclusions in this amber, which is in contrast to other seed‐free land plants, fungi, and lichens. Moreover, the identities of some of the few described putative fern taxa are dubious, and some fossils were even assigned to the Paleozoic seed fern genera Alethopteris, Pecopteris and to the form genus Sphenopteris containing Paleozoic and Mesozoic fern‐like leaf fossils. Here, we review previously described fern inclusions from Baltic amber and identify further fern‐like leaf inclusions as belonging to the extant angiosperm genus Comptonia (sweet ferns, Myricaceae). We conclude that only one taxon, Matonia striata (Matoniaceae), can with confidence be identified as a Polypodiopsida representative. Although “Pecopteris” humboldtiana is so far only known as sterile foliage, its leaf morphology strongly suggests that also this taxon belongs to the Polypodiopsida rather than to any other tracheophyte lineage. We propose accommodating “Pecopteris” humboldtiana in the new genus Berendtiopteris.“Alethopteris” serrata and “Sphenopteris” phyllocladoides are not to be regarded as evidence of ferns from Baltic amber. Reinvestigation of the holotypes of these two taxa did not reveal to which tracheophyte lineages these fossils belong. We suggest that the scarcity of fern remains from Baltic amber may reflect both a relatively low fern diversity in the source area of the fossil resin, and an absence or rarity of epiphytic and climbing ferns as observed in modern temperate forest ecosystems.Eva-Maria Sadowski Leyla J. Seyfullah Ledis Regalado Laura E. Skadell Alexander Gehler Carsten Grohn Christel Hoffeins Hans Werner Hoffeins Christian Neumann Harald Schneider Alexander R. Schmidt 2019Journal of Systematics and Evolution2019,57,4:0
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