Pengchuan Sun
Junior Editors, Plant Diversity
Sichuan University, Chengdu, China
Area of expertise: evolutionary developmental biology; comparative and evolutionary genomics; phylo- and biogeography
Sichuan University, Chengdu, China
Area of expertise: evolutionary developmental biology; comparative and evolutionary genomics; phylo- and biogeography
Title: PhD
Email: sunpengchuan@gmail.com
Web-link of Research Group: https://www.researchgate.net/profile/Pengchuan-Sun
Selected publications (no more than 15):
P Sun, Z Lu, et al. Subgenome-aware analyses reveal the genomic consequences of ancient allopolyploid hybridizations throughout the cotton family. Proceedings of the National Academy of Sciences 2024, 121(15): e2313921121.
P Sun*, B Jiao*, et al. WGDI: A user-friendly toolkit for evolutionary analyses of whole-genome duplications and ancestral karyotypes. Molecular Plant 2022,15: 1841-1851. (Highly Cited Papers & Hot Paper)
Y Yang*, P Sun*, et al. Prickly waterlily and rigid hornwort genomes shed light on early angiosperm evolution. Nature Plants 2020, 6: 512-222.
J Ma*, P Sun*, D Wang*, et al. The Chloranthus sessilifolius genome provides insight into early diversification of angiosperms. Nature Communications 2021, 12:6929.
H Hu*, P Sun*, Y Yang*, et al. Genome-scale angiosperm phylogenies based on nuclear, plastome, and mitochondrial datasets. Journal of Integrative Plant Biology 2023, 00: 1–12.
X Song*, P Sun*, J Yuan*, et al. The celery genome sequence reveals sequential paleo-polyploidizations, karyotype evolution and resistance gene reduction in apiales. Plant Biotechnology Journal 2021, 19: 731-744.
Y Li*, P Sun*, et al. The Corylus mandshurica genome provides insights into the evolution of Betulaceae genomes and hazelnut breeding. Horticulture Research 2021, 8: 54.
Wang Z*, Li Y*, Sun P*, et al. A high-quality Buxus austro-yunnanensis (Buxales) genome provides new insights into karyotype evolution in early eudicots. BMC Biology 2022, 20: 1-17.
J Wang*, J Yu*, J Li*, P Sun*, L Wang*, et al. Two likely auto-tetraploidization events shaped kiwifruit genome and contributed to establishment of the Actinidiaceae family. iScience 2018, 7:230-240.