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Woudenberg, S.

Publications and source records attributed to Woudenberg, S..

3 recordsLinked to original sources

Plant Acupuncture: a low-cost and open-source device for local mechanical stimulation

Background: Mechanical signals are important regulators of cellular responses in plants. They guide plant development and can activate defense and repair mechanisms. Yet, the molecular mechanisms by which plants perceive, transduce, and interpret mechanical signals are still poorly understood. This is in part due to the lack of methods to apply local, precise and non-damaging mechanical forces to plant cells. Micro-indentation is highly suitable for this purpose, yet available instrumentation is often expensive and difficult to combine with high-resolution microscopy. Results: We designed an open-source and affordable modular indentation device, consisting of 3D printed elements, 3 commercially available piezo motors, and a variety of indentation needles. Due to its modularity, the setup can be readily adapted to meet experimental requirements and works on all microscopes with bespoke adaptors. We show that the setup can be used to explore both rapid and slower touch responses, exemplified by visualizing calcium waves and actin patches induced by touch. We also show that the setup is compatible with various plant species and tissues and can be combined with high-resolution functional imaging. Conclusions: The simple and flexible design of the indentation device presented in this paper ensures that any lab with a 3D printer can build their own setup at low cost and with minimal time investment. The system has a wide range of applications for live plant tissue, making indentation experiments and thereby plant mechanobiology studies, more accessible.

plant biology↗

Transgenerational polarity axis inheritance during Ceratopteris embryogenesis

For sexually reproducing organisms to pass on their genetic information, progeny must successfully establish. Various life history strategies have evolved, using either dispersal of large numbers of progeny or intensive nurturing of a few. Most plants use the former strategy, but ferns generate a single embryo in the exact same location as the mother, and it is unknown how progeny success is promoted, or how embryogenesis is adapted. By studying Ceratopteris richardii embryogenesis, we find that maternal tissues guide orientation of the early embryo body axis, thus aligning its root pole towards the homologous maternal rhizoids. We find that axis polarity inheritance is mediated by maternal tissue mechanical patterns, and thus identify a robust mechanism for progeny establishment as a nurturing strategy in plants.

plant biology↗

Analysis of auxin responses in the fern Ceratopteris richardii identifies tissue ontogeny as a major determinant for response properties

The auxin signalling molecule regulates a range of plant growth and developmental processes. The core transcriptional machinery responsible for auxin-mediated responses is conserved across all land plants. Genetic, physiological and molecular exploration in bryophyte and angiosperm model species have shown both qualitative and quantitative differences in auxin responses. Given the highly divergent ontogeny of the dominant gametophyte (bryophytes) and sporophyte (angiosperms) generations, however, it is unclear whether such differences derive from distinct phylogeny or ontogeny. Here, we address this question by comparing a range of physiological, developmental and molecular responses to auxin in both generations of the model fern Ceratopteris richardii. We find that auxin response in Ceratopteris gametophytes closely resembles that of a thalloid bryophyte, whereas the sporophyte mimics auxin response in flowering plants. This resemblance manifests both at phenotypic and transcriptional level. Furthermore, we show that disrupting auxin transport can lead to ectopic sporophyte induction on the gametophyte, suggesting a role for auxin in the alternation of generations. Our study thus identifies ontogeny, rather than phylogeny, as a major determinant of auxin response properties in land plants. Summary statementStudies in angiosperms and bryophytes have left unresolved the roles of tissue ontogeny and species phylogeny in auxin response. We address that problem by characterizing auxin response in a fern.

plant biology↗