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Biology subjects

Seluzicki, A.

Publications and source records attributed to Seluzicki, A..

3 recordsLinked to original sources

Precision-Based Filtering Facilitates Integration of Conventional and Single-Nucleus Transcriptomes to Identify Time- and Temperature-Sensitive Cell Populations

Transcriptome analysis via RNA sequencing (RNAseq) has become a ubiquitous method of molecular characterization from whole organisms, dissected tissues, and single cells. These experiments have provided an extraordinary volume of data describing the molecular states and responses to many conditions. However, standard approaches to RNAseq analysis commonly use expression level filters that eliminate potentially useful data in the service of decreasing noise. Here we describe the implementation of a coefficient of variation-based filter for RNAseq gene expression data. This filter prioritizes consistent data across replicates, allowing lowly-expressed genes with low-variation measurements to be retained for downstream analysis. We show that, in our Arabidopsis RNAseq data set, this filter allows for the inclusion of many more transcription factors than even a low-stringency expression level filter. We find that these lowly-expressed genes mark specific cell clusters in our single-nucleus (sn)RNAseq dataset. We further characterize communities of co-expressed genes, sampled across the day at two growth temperatures, in relation to snRNAseq cell clusters, finding evidence for a highly photosynthetic cell population, and a cell state marked by high cell division and translation. These methods can be expanded to RNAseq analysis in many systems, facilitating the construction of more detailed models of tissue-specific gene regulatory networks.

bioinformatics↗

Molecular genetic characterization of CASEIN KINASE 1-LIKE 12 in Arabidopsis

The CASEIN KINASE 1 (CK1) family plays diverse roles in development, physiology, and disease in eukaryotes. In Arabidopsis thaliana the CASEIN KINASE 1-LIKE (CKL) family has 13 members, but to date the roles of these kinases remain largely unclear. Here we characterize several insertion mutants, finding that CKL12 may contribute to hypocotyl and in primary root growth. Differential effects of insertions in different parts of the gene suggest that the 3 end of the transcript may be important for CKL12 function. We provide evidence that CKL12 may be a transcriptional target of brassinosteroid (BR) signaling. The CKL12 promoter contains in-vitro binding sites for BR-related transcription factors. Knock-down of these transcription factors using RNA interference reduces CKL12 transcript. Together, these data suggest that CKL12 may act downstream of BR signaling to regulate seedling growth.

plant biology↗

Genetic architecture of a light-temperature coincidence detector

Light and temperature variations are inescapable in nature. These signals provide daily and seasonal information, guiding life history determinations across many taxa. Here we show that signals from the PHOTOTROPIN2 (PHOT2) blue photoreceptor combine with low temperature information to control flowering. Plants lacking PHOT2 flower later than controls when grown in low ambient temperature. This phenotype is blocked by removal of NON-PHOTOTROPIC HYPOCOTYL 3 (NPH3) and recapitulated by reducing blue light intensity or removing the transcription factor CAMTA2. PHOT2 and CAMTA2 show non-additive genetic interactions in phenotype and gene expression. Network-based co-expression analysis indicates system-level control of key growth modules by PHOT2 and CAMTA2. CAMTA2 is required for low temperature up-regulation of EHB1, a known NPH3-interacting protein, providing a mechanism of temperature information input to the PHOT-NPH3 blue light signaling system. Together these data describe the genetic architecture of environmental signal integration in this blue light-low temperature coincidence detection module.

plant biology↗