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Buron, F.

Publications and source records attributed to Buron, F..

2 recordsLinked to original sources

Reference frames for encoding of translation and tilt in the caudal cerebellar vermis

Many daily behaviors rely critically on estimates of our bodys motion and orientation in space. Vestibular signals are essential for such estimates but to contribute appropriately two key sets of computations are required. First, ambiguous motion information from the otolith organs must be combined with spatially transformed rotational signals (e.g., from the canals) to distinguish head translation from tilt. Second, tilt and translation estimates must be transformed from a head- to a body-centered reference frame to correctly interpret the bodys motion. Studies have shown that cells in the caudal cerebellar vermis (nodulus and ventral uvula, NU) reflect the output of the first set of computations to estimate translation and tilt. However, it remains unknown whether these estimates are encoded exclusively in head-centered coordinates or whether they reflect a further transformation towards body-centered coordinates. Here we addressed this question by examining how the 3D spatial tuning of otolith and canal signals on translation- and tilt-selective NU neurons varies with changes in head-re-body and body-re-gravity orientation. We show that NU cell tuning properties are consistent with head-centered coding of otolith signals during translation. Furthermore, while canals signals in the NU have been transformed into world-referenced estimates of reorientation relative to gravity (i.e., tilt), as needed to resolve the tilt-translation ambiguity, the resulting tilt estimates are encoded in head-centered coordinates. Our results thus suggest that body-centered motion and orientation estimates required for postural control, navigation and reaching are computed elsewhere either by further transforming NU outputs or via computations in other parallel pathways.

neuroscience↗

Cytokinin synthesis and export from symbiotic root nodules coordinates shoot growth with nitrogen fixation

O_LIDevelopment of symbiotic root nodules is a cytokinin-dependent process that is critical to nitrogen acquisition in legumes. The extent and manner in which root nodules contribute to whole-plant cytokinin and nitrogen supply signalling is unknown. C_LIO_LIUsing a combination of genetic, biochemical and physiological approaches, we characterised the role of cytokinin synthesis, export and perception in coordination of symbiotic nodule development and shoot growth in the legume Lotus japonicus. C_LIO_LILjPup1 encodes a plasma membrane localised cytokinin exporter with isopentenyladenine (iP) and trans-Zeatin (tZ) export capacity. LjPup1 shows a distinct nodule-specific expression pattern with greatest transcript levels detected in mature nodules. Mutants accumulate more isopentenyladenine riboside (iPR) in nodule tissues and demonstrate hallmarks of reduced cytokinin signalling. Despite normal nodule numbers and function, shoot growth is markedly reduced in Ljpup1 mutants, as well as in mutants impaired in tZ biosynthesis. C_LIO_LIWe found symbiotic root nodules contribute to shoot growth via export of active cytokinins. A cytokinin exporter in the purine permease family thus contributes to long-distance cytokinin homeostasis regulating plant development. C_LI

plant biology↗