Showing posts with label conservation. Show all posts
Showing posts with label conservation. Show all posts

Sunday, 3 November 2024

Chromosome-level genome assembly of the Australian rainforest tree Rhodamnia argentea (malletwood)

Genome projects don’t always go according to plan, and when we first sequenced Rhodamnia argentea with 10x Genomics linked reads, we accidentally sequenced a parasite along with it. This was quite hard to identify from the sequencing data itself, as the depth of sequencing was quite high, and we were unable to identify the guilty bug itself, which is probably microscopic. Getting to the bottom of this took a back seat for a while when the focus of the project shifted to Melaleuca quinquenervia, but with the addition of ONT reads and Hi-C, we have now been able to generate a chromosome-level decontaminated assembly. (An assembly of the contaminating mite will follow…)

Chen SH, Jones A, Lu-Irving P, Yap JYS, van der Merwe M, Bragg JG & Edwards RJ (2024): Chromosome-level genome assembly of the Australian rainforest tree Rhodamnia argentea (malletwood). Genome Biology and Evolution 16(11):evae238. [Gen Biol Evol] [PubMed]

Abstract

Myrtaceae are a large family of woody plants, including hundreds that are currently under threat from the global spread of a fungal pathogen, Austropuccinia psidii (G. Winter) Beenken, which causes myrtle rust. A reference genome for the Australian native rainforest tree Rhodamnia argentea Benth. (malletwood) was assembled from Oxford Nanopore Technologies long-reads, 10x Genomics Chromium linked-reads, and Hi-C data (N50 = 32.3 Mb and BUSCO completeness 98.0%) with 99.0% of the 347 Mb assembly anchored to 11 chromosomes (2n = 22). The R. argentea genome will inform conservation efforts for Myrtaceae species threatened by myrtle rust, against which it shows variable resistance. We observed contamination in the sequencing data, and further investigation revealed an arthropod source. This study emphasizes the importance of checking sequencing data for contamination, especially when working with nonmodel organisms. It also enhances our understanding of a tree that faces conservation challenges, contributing to broader biodiversity initiatives.

Tuesday, 9 July 2024

New pre-print: The Genomics for Australian Plants (GAP) framework initiative – developing genomic resources for understanding the evolution and conservation of the Australian flora

The Bioplatforms Australia Genomics for Australian Plants (GAP) initiative aims to sequence and assemble representative genomes of Australia’s unique flora, which boasts over 24,000 native vascular plant species evolved over millions of years. The program brings together academic groups, herbaria and botanic gardens from across the country to build genomic capacity and create valuable resources for the classification, conservation and utilisation of Australian plants. We were lucky enough to sequence one of the first GAP species, the NSW Waratah. Now, the capstone paper outlining the project and its key findings from multiple species is out as a pre-print at EcoEvoRxiv:

Simpson L, Cantrill DJ, Byrne M, Allnutt TR, King GJ, Lum M, Al Bkhetan Z, Andrew R, Baker WJ, Barrett MD, Batley J, Berry O, Binks RM, Bragg JG, Broadhurst L, Brown G, Bruhl J, Edwards RJ, Ferguson S, Forest F, Gustafsson J, Hammer TA, Holmes GD, Jackson CJ, James EA, Jones A, Kersey PJ, Leitch IJ, Maurin O, McLay TGB, Murphy DJ, Nargar K, Nauheimer L, Sauquet H, Schmidt-Lebuhn AN, Shepherd KA, Syme AE, Waycott M, Wilson TC, Crayn DM (preprint): The Genomics for Australian Plants (GAP) framework initiative – developing genomic resources for understanding the evolution and conservation of the Australian flora. EcoEvoRxiv DOI: https://doi.org/10.32942/X2RP70

The generation and analysis of genome-scale data—genomics—is driving a rapid increase in plant biodiversity knowledge. However, the speed and complexity of technological advance in genomics presents challenges for its widescale use in evolutionary and conservation biology. Here, we introduce and describe a national-scale collaboration conceived to build genomic resources and capability for understanding the Australian flora: the Genomics for Australian Plants (GAP) Framework Initiative. We outline (a) the history of the project including the collaborative framework, partners, and funding; (b) GAP principles such as rigour in design, sample verification and documentation, data management, and data accessibility; and (c) the structure of the consortium and its four activity streams (reference genomes, phylogenomics, conservation genomics, and training), with the rationale and aims for each of them. We show, through discussion of its successes and challenges, the value of this multi-institutional consortium approach and the enablers, such as well-curated collections and national collaborative research infrastructure, all of which have led to a substantial increase in capacity and delivery of biodiversity knowledge outcomes.

The initiative is about more than just reference genomes, with core activity in phylogenomics, conservation genomics and training too. For more information on the project and the resources generated (with more to come), read the paper and/or visit the GAP website.

Tuesday, 2 July 2024

Extant and extinct bilby genomes combined with Indigenous knowledge improve conservation of a unique Australian marsupial

Hogg C*, Edwards RJ*, Farquharson K*, Silver L*, Brandies P, Peel E, Escalona M, Jaya FR, Thavornkanlapachai R, Batley K, Bradford TM, Chang JK, Chen Z, Deshpande N, Dziminski M, Ewart KM, Griffith OW, Marin Gual L, Moon KL, Travouillon KJ, Waters P, Whittington CM, Wilkins MR, Helgen KM, Lo N, Ho SYW, Ruiz Herrera A, Paltridge R, Marshall Graves JA, Renfree M, Shapiro B, Ottewell K, Kiwirrkurra Rangers & Belov K (2024): Extant and extinct bilby genomes combined with Indigenous knowledge improve conservation of a unique Australian marsupial. Nature Ecology & Evolution 8:1311–1326. [*Joint first authors] [Research Square] [Nat Ecol Evol] [PubMed]

Abstract

Ninu (greater bilby, Macrotis lagotis) are desert-dwelling, culturally and ecologically important marsupials. In collaboration with Indigenous rangers and conservation managers, we generated the Ninu chromosome-level genome assembly (3.66 Gbp) and genome sequences for the extinct Yallara (lesser bilby, Macrotis leucura). We developed and tested a scat single-nucleotide polymorphism panel to inform current and future conservation actions, undertake ecological assessments and improve our understanding of Ninu genetic diversity in managed and wild populations. We also assessed the beneficial impact of translocations in the metapopulation (N = 363 Ninu). Resequenced genomes (temperate Ninu, 6; semi-arid Ninu, 6; and Yallara, 4) revealed two major population crashes during global cooling events for both species and differences in Ninu genes involved in anatomical and metabolic pathways. Despite their 45-year captive history, Ninu have fewer long runs of homozygosity than other larger mammals, which may be attributable to their boom-bust life history. Here we investigated the unique Ninu biology using 12 tissue transcriptomes revealing expression of all 115 conserved eutherian chorioallantoic placentation genes in the uterus, an XY1Y2 sex chromosome system and olfactory receptor gene expansions. Together, we demonstrate the holistic value of genomics in improving key conservation actions, understanding unique biological traits and developing tools for Indigenous rangers to monitor remote wild populations.

Monday, 1 February 2021

Dr Collin Ahrens (Postdoc)

Dr Collin Ahrens joined the Edwards lab as a postdoctoral researcher in January of 2021. He studies local adaptation to environmental variation (e.g. pathogens, drought, heatwaves etc.), and investigates how these adaptive patterns can be used to manage plant populations.

Local adaptation is often driven by differential physiological responses to environmental stress, controlled by genetic mechanisms. Therefore, he focuses on the E + G = P paradigm to ask questions such as how do populations evolve such different responses to different environmental conditions? And how do species evolve such different responses to the same environmental conditions? To answer these fundamental questions, he leverages several computational techniques to disentangle patterns of adaptation. At the Edwards lab, he will use whole genome sequencing, quantitative genetics, and physiological experimentation to explore how myrtle rust resistance segregates within Melaleuca quinquenervia populations to assist in broader conservation programs, including applied outcomes such as seed collection and ex situ breeding programs.