Local light signaling at the leaf tip drives remote differential petiole growth through auxin-gibberellin dynamics

Publication date

2023-01-09

Authors

Küpers, Jesse J.ISNI 0000000492528290
Snoek, BastenISNI 0000000419527486
Oskam, LisaISNI 0000000493077460
Pantazopoulou, C.ORCID 0000-0001-5412-6029ISNI 0000000492917325
Matton, Sanne E. A.ISNI 0000000524184585
Reinen, EmilieISNI 0000000388440600
Liao, Che YangISNI 0000000493372689
Eggermont, Eline D.C.ISNI 0000000518165134
Weekamp, Harold
Devaiah, Muthanna BiddandaISNI 0000000517780012

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Article
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cc_by

Abstract

Although plants are immobile, many of their organs are flexible to move in response to environmental cues. In dense vegetation, plants detect neighbors through far-red light perception with their leaf tip. They respond remotely, with asymmetrical growth between the abaxial and adaxial sides of the leafstalk, the petiole. This results in upward movement that brings the leaf blades into better lit zones of the canopy. The plant hormone auxin is required for this response, but it is not understood how non-differential leaf tip-derived auxin can remotely regulate movement. Here, we show that remote signaling of far-red light promotes auxin accumulation in the abaxial petiole. This local auxin accumulation is facilitated by reinforcing an intrinsic directionality of the auxin transport protein PIN3 on the petiole endodermis, as visualized with a PIN3-GFP line. Using an auxin biosensor, we show that auxin accumulates in all cell layers from endodermis to epidermis in the abaxial petiole, upon far-red light signaling in the remote leaf tip. In the petiole, auxin elicits a response to both auxin itself as well as a second growth promoter; gibberellin. We show that this dual regulation is necessary for hyponastic leaf movement in response to light. Our data indicate that gibberellin is required to permit cell growth, whereas differential auxin accumulation determines which cells can grow. Our results reveal how plants can spatially relay information about neighbor proximity from their sensory leaf tips to the petiole base, thus driving adaptive growth.

Keywords

auxin, C3PO, confocal microscopy, gibberellin, hyponasty, leaf movement, neighbor detection, phytochrome, RNA sequencing, shade avoidance, General Neuroscience, General Biochemistry,Genetics and Molecular Biology, General Agricultural and Biological Sciences

Citation

Küpers, J J, Snoek, B L, Oskam, L, Pantazopoulou, C K, Matton, S E A, Reinen, E, Liao, C Y, Eggermont, E D C, Weekamp, H, Biddanda-Devaiah, M, Kohlen, W, Weijers, D & Pierik, R 2023, 'Local light signaling at the leaf tip drives remote differential petiole growth through auxin-gibberellin dynamics', Current Biology, vol. 33, no. 1, pp. 75-85. https://doi.org/10.1016/j.cub.2022.11.045