Hanna Schneeweiss

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Universität Wien
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Austria

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Recent Grants

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Diversity and evolution of chili peppers, the genus Capsicum (Solanaceae)

Open Date: 2015-07-01

Close Date: 2018-06-30

Grant: Close

Origin and genome evolution of polyploids in the genus Melampodium

Open Date: 2013-01-01

Close Date: 2015-12-31

Grant: Close

Chromosomal evolution in Prospero autumnale complex

Open Date: 2009-10-01

Close Date: 2012-09-30

Grant: Close

Chromosomal Evolution in Melampodium

Open Date: 2005-03-01

Close Date: 2008-02-29

Articles (14)

CAM evolution is associated with gene family expansion in an explosive bromeliad radiation

The subgenus Tillandsia (Bromeliaceae) belongs to one of the fastest radiating clades in the plant kingdom and is characterised by the repeated evolution of Crassulacean acid metabolism (CAM). Despite its complex genetic basis, this water-conserving trait has evolved independently across many plant families and is regarded as a key innovation trait and driver of ecological diversification in Bromeliaceae. By producing high-quality genome assemblies of a Tillandsia species pair displaying divergent photosynthetic phenotypes, and combining genome-wide investigations of synteny, transposable element (TE) dynamics, sequence evolution, gene family evolution and temporal differential expression, we were able to pinpoint the genomic drivers of CAM evolution in Tillandsia. Several large-scale rearrangements associated with karyotype changes between the two genomes and a highly dynamic TE landscape shaped the genomes of Tillandsia. However, our analyses show that rewiring of photosynthetic metabolism is mainly obtained through regulatory evolution rather than coding sequence evolution, as CAM-related genes are differentially expressed across a 24-hour cycle between the two species but are not candidates of positive selection. Gene orthology analyses reveal that CAM-related gene families manifesting differential expression underwent accelerated gene family expansion in the constitutive CAM species, further supporting the view of gene family evolution as a driver of CAM evolution.

Year:

2024

Collaborators (10)

Thibault Leroy

Universität Wien

AUSTRIA

Martin Duchoslav

Assistant professor

Univerzita Palackého v Olomouci

CZECH REPUBLIC

Ovidiu Paun

Universität Wien

AUSTRIA

Michael Barfuss

Universität Wien

AUSTRIA

Bozena Kolano

University of Silesia

POLAND

Josef Greimler

Professor

Universität Wien

AUSTRIA

Inkyu Park

Assistant professor

Changwon National University

SOUTH KOREA

Eva Temsch

Universität Wien

AUSTRIA

Tae-Soo Jang

Chungbuk National University

SOUTH KOREA

Gerald M. Schneeweiss

Universität Wien

AUSTRIA
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