Developmental Genetics of Corolla Tube Formation: Role of the tasiRNA-ARF Pathway and a Conceptual Model

Author:

Ding Baoqing1ORCID,Xia Rui23ORCID,Lin Qiaoshan1ORCID,Gurung Vandana1ORCID,Sagawa Janelle M.1ORCID,Stanley Lauren E.1ORCID,Strobel Matthew1ORCID,Diggle Pamela K.1ORCID,Meyers Blake C.34ORCID,Yuan Yao-Wu15ORCID

Affiliation:

1. Department of Ecology and Evolutionary Biology, University of Connecticut, Storrs, Connecticut 06269

2. State Key Laboratory for Conservation and Utilization of Subtropical Agro-Bioresources, South China Agricultural University, Guangzhou, Guangdong 510642, China

3. Donald Danforth Plant Science Center, St. Louis, Missouri 63132

4. Division of Plant Sciences, University of Missouri, Columbia, Missouri 65211

5. Institute for Systems Genomics, University of Connecticut, Storrs, Connecticut 06269

Abstract

Abstract Over 80,000 angiosperm species produce flowers with petals fused into a corolla tube. The corolla tube contributes to the tremendous diversity of flower morphology and plays a critical role in plant reproduction, yet it remains one of the least understood plant structures from a developmental genetics perspective. Through mutant analyses and transgenic experiments, we show that the tasiRNA-ARF pathway is required for corolla tube formation in the monkeyflower species Mimulus lewisii. Loss-of-function mutations in the M. lewisii orthologs of ARGONAUTE7 and SUPPRESSOR OF GENE SILENCING3 cause a dramatic decrease in abundance of TAS3-derived small RNAs and a moderate upregulation of AUXIN RESPONSE FACTOR3 (ARF3) and ARF4, which lead to inhibition of lateral expansion of the bases of petal primordia and complete arrest of the upward growth of the interprimordial regions, resulting in unfused corollas. Using the DR5 auxin-responsive promoter, we discovered that auxin signaling is continuous along the petal primordium base and the interprimordial region during the critical stage of corolla tube formation in the wild type, similar to the spatial pattern of MlARF4 expression. Auxin response is much weaker and more restricted in the mutant. Furthermore, exogenous application of a polar auxin transport inhibitor to wild-type floral apices disrupted petal fusion. Together, these results suggest a new conceptual model highlighting the central role of auxin-directed synchronized growth of the petal primordium base and the interprimordial region in corolla tube formation.

Funder

NSF | BIO | Division of Integrative Organismal Systems

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Plant Science

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