Javascript must be enabled to continue!
Genomic analysis of field pennycress (Thlaspi arvense) provides insights into mechanisms of adaptation to high elevation
View through CrossRef
Abstract
Background
Understanding how organisms evolve and adapt to extreme habitats is of crucial importance in evolutionary ecology. Altitude gradients are an important determinant of the distribution pattern and range of organisms due to distinct climate conditions at different altitudes. High-altitude regions often provide extreme environments including low temperature and oxygen concentration, poor soil, and strong levels of ultraviolet radiation, leading to very few plant species being able to populate elevation ranges greater than 4000 m. Field pennycress (
Thlaspi arvense
) is a valuable oilseed crop and emerging model plant distributed across an elevation range of nearly 4500 m. Here, we generate an improved genome assembly to understand how this species adapts to such different environments.
Results
We sequenced and assembled de novo the chromosome-level pennycress genome of 527.3 Mb encoding 31,596 genes. Phylogenomic analyses based on 2495 single-copy genes revealed that pennycress is closely related to
Eutrema salsugineum
(estimated divergence 14.32–18.58 Mya), and both species form a sister clade to
Schrenkiella parvula
and genus
Brassica
. Field pennycress contains the highest percentage (70.19%) of transposable elements in all reported genomes of Brassicaceae, with the retrotransposon proliferation in the Middle Pleistocene being likely responsible for the expansion of genome size. Moreover, our analysis of 40 field pennycress samples in two high- and two low-elevation populations detected 1,256,971 high-quality single nucleotide polymorphisms. Using three complementary selection tests, we detected 130 candidate naturally selected genes in the Qinghai-Tibet Plateau (QTP) populations, some of which are involved in DNA repair and the ubiquitin system and potential candidates involved in high-altitude adaptation. Notably, we detected a single base mutation causing loss-of-function of the FLOWERING LOCUS C protein, responsible for the transition to early flowering in high-elevation populations.
Conclusions
Our results provide a genome-wide perspective of how plants adapt to distinct environmental conditions across extreme elevation differences and the potential for further follow-up research with extensive data from additional populations and species.
Springer Science and Business Media LLC
Title: Genomic analysis of field pennycress (Thlaspi arvense) provides insights into mechanisms of adaptation to high elevation
Description:
Abstract
Background
Understanding how organisms evolve and adapt to extreme habitats is of crucial importance in evolutionary ecology.
Altitude gradients are an important determinant of the distribution pattern and range of organisms due to distinct climate conditions at different altitudes.
High-altitude regions often provide extreme environments including low temperature and oxygen concentration, poor soil, and strong levels of ultraviolet radiation, leading to very few plant species being able to populate elevation ranges greater than 4000 m.
Field pennycress (
Thlaspi arvense
) is a valuable oilseed crop and emerging model plant distributed across an elevation range of nearly 4500 m.
Here, we generate an improved genome assembly to understand how this species adapts to such different environments.
Results
We sequenced and assembled de novo the chromosome-level pennycress genome of 527.
3 Mb encoding 31,596 genes.
Phylogenomic analyses based on 2495 single-copy genes revealed that pennycress is closely related to
Eutrema salsugineum
(estimated divergence 14.
32–18.
58 Mya), and both species form a sister clade to
Schrenkiella parvula
and genus
Brassica
.
Field pennycress contains the highest percentage (70.
19%) of transposable elements in all reported genomes of Brassicaceae, with the retrotransposon proliferation in the Middle Pleistocene being likely responsible for the expansion of genome size.
Moreover, our analysis of 40 field pennycress samples in two high- and two low-elevation populations detected 1,256,971 high-quality single nucleotide polymorphisms.
Using three complementary selection tests, we detected 130 candidate naturally selected genes in the Qinghai-Tibet Plateau (QTP) populations, some of which are involved in DNA repair and the ubiquitin system and potential candidates involved in high-altitude adaptation.
Notably, we detected a single base mutation causing loss-of-function of the FLOWERING LOCUS C protein, responsible for the transition to early flowering in high-elevation populations.
Conclusions
Our results provide a genome-wide perspective of how plants adapt to distinct environmental conditions across extreme elevation differences and the potential for further follow-up research with extensive data from additional populations and species.
Related Results
Characterization of Fatty Acid Elongation1 (FAE1) in Thlaspi arvense
Characterization of Fatty Acid Elongation1 (FAE1) in Thlaspi arvense
FAE1 encodes the condensing enzyme 3-ketoacyl-CoA synthase 18 (KCS18), which catalyzes the first and rate-limiting step in the four-reaction cycle of very long chain fatty acid (VL...
Loss of PIF7 attenuates shade and elevated temperature responses throughout the lifecycle in pennycress
Loss of PIF7 attenuates shade and elevated temperature responses throughout the lifecycle in pennycress
Abstract
Pennycress (
Thlaspi arvense
) is being developed as a winter annual intermediate oilseed bioenergy ...
Growth and Nutrient Uptake of Cell Suspensions of Thlaspi caerulescens and Brassica napus Treated with the Heavy Metal Zinc
Growth and Nutrient Uptake of Cell Suspensions of Thlaspi caerulescens and Brassica napus Treated with the Heavy Metal Zinc
Thlaspi caerulescens
(Brassicaceae), known as a Zn hyperaccumulator, is able to accumulate and tolerate Zn at high concentrations in its biomass. Cell suspensio...
Growth and Nutrient Uptake of Cell Suspensions of Thlaspi caerulescens and Brassica napus Treated with the Heavy Metal Zinc
Growth and Nutrient Uptake of Cell Suspensions of Thlaspi caerulescens and Brassica napus Treated with the Heavy Metal Zinc
Thlaspi caerulescens (Brassicaceae), known as a Zn hyperaccumulator, is able to accumulate and tolerate Zn at high concentrations in its biomass. Cell suspension cultures of Thlasp...
Adaptive Planning for Resilient Coastal Waterfronts
Adaptive Planning for Resilient Coastal Waterfronts
Many delta and coastal cities worldwide face increasing flood risk due to changing climate conditions and sea level rise. The question is how to develop measures and strategies for...
Successful coastal adaptation projects? The role of multi-lateral climate funding.
Successful coastal adaptation projects? The role of multi-lateral climate funding.
<p><strong>This thesis investigates the evaluation of climate change adaptation success of projects in coastal zones of developing countries, specifically focusing on t...
Reproduction of Soybean Cyst Nematode Populations on Field Pennycress, Henbit, and Purple Deadnettle Weed Hosts
Reproduction of Soybean Cyst Nematode Populations on Field Pennycress, Henbit, and Purple Deadnettle Weed Hosts
Several weeds serve as alternative soybean cyst nematode (SCN) hosts. Still, the relative reproductive capacity of SCN HG types (Heterodera glycines type) on weed hosts relative to...
Elevation is Associated with Human Skin Microbiomes
Elevation is Associated with Human Skin Microbiomes
Human skin microbiota plays a crucial role in the defense against pathogens, and is associated with various skin diseases. High elevation is positively correlated with various extr...

