The absence of a suberised exodermis in
Banksia
(Proteaceae) roots enables rapid carboxylate release for phosphorus mobilisation but also increases their susceptibility to soil pathogens. Recently, evidence of arbuscular mycorrhizal (AM) colonisation in
Banksia
species from high-rainfall regions prompted a reassessment of the association between
Banksia
species and AM fungi.
We collected root and soil samples from
Banksia attenuata
and
B. sessilis
at two contrasting rainfall sites to characterise the AM fungal communities. We also isolated oomycetes from the soil samples and conducted a glasshouse experiment using the native soils to verify the presence of viable AM fungi.
At the high-rainfall Warren site, both
Banksia
species showed AM colonisation and five oomycetes were isolated, whereas no colonisation and only one oomycete occurred at the drier Jurien Bay site. In both species, AM fungal alpha diversity was lower in root samples than in soil samples, with roots dominated by Glomeraceae and soils enriched in Gigasporaceae and Acaulosporaceae. Additionally, Endogonaceae occurred in
B. attenuata
roots but were largely absent from
B. sessilis
.
These results demonstrate that the two
Banksia
species maintain context-dependent mycorrhizal associations under moist conditions, challenging their conventional classification as non-mycorrhizal.
Zhao Zhang, Ling‐Ling Chen, D. Migliorini et al.· Plant and Soil· 0 citations
There is a need to breed superior wheat cultivars to meet increasing global food demand. However, modern cultivars have undergone a substantial loss of genetic diversity due to intensive breeding. A pool of genetic diversity remains untapped in wheat landraces, and pangenomics can help identify genes of potential agronomic importance in these old lines that can be applied to accelerate wheat improvement. Here, we have constructed the largest wheat pangenome to date, representing 1,061 diverse individuals (827 landraces and 234 modern cultivars) from 47 countries across six continents. We identified 10,426 predicted gene models specific to landraces that are enriched for functions associated with disease resistance, abiotic stress adaptation, and symbiosis. Our results reveal that landraces harbour an extensive repertoire of genes that are absent from modern wheat cultivars and provide a foundational resource for the systematic reintroduction of adaptive variation to enhance wheat resilience and sustainability in the face of climate change.
Teng Li, Felipe E. Albornoz, John Bruton et al.· bioRxiv· 0 citations
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