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Jorgensen, K.

Publications and source records attributed to Jorgensen, K..

4 recordsLinked to original sources

Stepwise neofunctionalization of the NF-κB family member c-Rel during vertebrate evolution

Adaptive immunity and the five vertebrate NF-{kappa}B/Rel family members first appeared in cartilaginous fish, suggesting that divergence and specialization within the NF-{kappa}B family helped facilitate the evolution of adaptive immunity. One specialized function of the NF-{kappa}B c-Rel protein in macrophages is the activation of Il12b, which encodes a key regulator of T-cell development. We found that c-Rel is a far more potent regulator of Il12b than of any other inducible genes in macrophages, with c-Rel regulation of Il12b dependent on its heightened intrinsic DNA-binding affinity. c-Rel homodimers regulate Il12b transcription in part via motifs with little resemblance to canonical NF-{kappa}B motifs. ChIP-seq experiments further defined distinct c-Rel DNA-binding preferences genome-wide, and X-ray crystallography of a c-Rel/RelA chimeric protein identified key amino acid changes that support the unique c-Rel properties. Unexpectedly, these changes, along with the c-Rel/RelA binding affinity differences, were largely restricted to mammalian species. Together, our findings reveal how a transcription factor family member can undergo a structural transition at a late stage of vertebrate evolution, resulting in an increased intrinsic DNA binding affinity and with clear functional consequences, presumably to support the increasing complexity of immune regulation.

immunology↗

De novo genome assembly of four Andean potato weevil species (Premnotrypes,Rhigopsidius), the primary agricultural pest of the potato in South America

The Andean potato weevil complex are the most widespread and serious insect pests to potato crops in the Andes. More broadly, genomic assemblies of insect pests are currently lacking in agricultural research, especially those from the order Coleoptera. These genome data are essential for identifying potential underlying mechanisms important to biological control strategies and food security in the highlands. Here, we present the de novo genome assemblies for four species of the Andean potato weevil complex: Premnotrypes vorax, P. suturicallus, P. latithorax, and Rhigopsidius piercei. Genome assemblies exceeded the average size of those from the order Coleoptera and were highly repetitive: for P. vorax (1.33 Gb, 71.51% repetitive), P. latithorax (623 Mb, 59.03% repetitive), P. suturicallus (1.23 Gb, 70.19% repetitive), and R. piercei (1.55 Gb, 71.91% repetitive). We examined genomic regions related to metabolic potato plant detoxification and insecticide resistance using the available Colorado potato beetle (Leptinotarsa decemlineata) genome annotations as a guide. Our analysis of these weevil genomes identified chemosensory receptors and odorant binding proteins that could be related to detecting their hosts, the potato plant (Solanum tuberosum), as well as many genomic regions involved in subverting pesticide resistance. We have generated the first whole-genome assemblies of the Andean potato weevil complex that will be foundational for future agricultural pest management and entomological research in South America. Author SummaryWithin the South American Andean mountains the Andean potato weevil insects are the most widespread and serious pests to potatoes, destroying around 89% of potato harvests a year when insecticides are not used. Here, we collected and performed whole-genome sequencing for the first time for four Andean potato weevil species: Premnotrypes vorax, P. suturicallus, P. latithorax, and Rhigopsidius piercei. After analysis of these genome assemblies, we found that they were large and highly repetitive compared to other published beetle genome data in the order Coleoptera. After further examination of these genome assemblies, we found regions related to metabolic potato plant detoxification, insecticide resistance, and chemosensory and odorant binding protein receptors that could be related to detecting potato plants. These genomic identifications provide novel molecular insight into regions associated with insecticide resistance, metabolic abilities, and environmental receptors, and can serve as a future valuable resource in classifying phylogenetic relationships as well as identifying regions of interest for improved pest management for potato farmers.

genomics↗

Equalizing epigenetically imprinted centromeres in early mammalian embryos

The CENP-A histone variant epigenetically defines centromeres, where its levels and locations are precisely maintained through mitotic cell divisions. However, differences in centromere CENP-A propagation in soma versus female/male germline remains poorly understood. Here, we generated CenpamScarlet mice and followed CENP-A dynamics in gametes, zygotes, and embryos. We found that, unlike somatic cells, progenitor female and male germ cells carry high centromeric CENP-A levels that decrease upon terminal differentiation. The reduction in CENP-A is differentially regulated between sexes, resulting in a ten-fold higher level in oocytes compared to sperm. In the zygote, the parent-of-origin CENP-A asymmetry is equalized prior to initial S-phase by redistribution of nuclear CENP-A from maternal to paternal chromosomes. Redistribution of CENP-A requires both CDK1/2 and PLK1 centromeric machinery. These experiments provide direct evidence for resetting of epigenetically imprinted centromeres in early pronuclear stage embryos and imply a mechanism to sense the non-equivalency of parental chromosomes. HighlightsO_LIIncreased CENP-A density at centromeres is a conserved property of germline stem cells while CENP-A reduction is coincident with germ cell differentiation C_LIO_LIPaternal and maternal CENP-A containing nucleosomes are intergenerationally inherited C_LIO_LICENP-A density at centromeres differs between male and female mature gametes C_LIO_LIUpon fertilization, maternal nuclear CENP-A is redistributed to equalize with parental CENP-A C_LIO_LICENP-C and MIS18BP1 are asymmetrically enriched in the parental pronuclei in accordance with CENP-A asymmetry. C_LIO_LILicensing for centromere equalization begins before zygotic DNA replication C_LI

developmental biology↗

Single residue substitution in protamine 1 disrupts sperm genome packaging and embryonic development in mice

Conventional dogma presumes that protamine-mediated DNA compaction in sperm is achieved by passive electrostatics between DNA and the arginine-rich core of protamines. However, phylogenetic analysis reveals several non-arginine residues that are conserved within, but not across, species. The functional significance of these residues or post-translational modifications are poorly understood. Here, we investigated the functional role of K49, a rodent-specific lysine residue in mouse protamine 1 (P1) that is acetylated early in spermiogenesis and retained in sperm. In vivo, an alanine substitution (P1 K49A) results in ectopic histone retention, decreased sperm motility, decreased male fertility, and in zygotes, premature P1 removal from paternal chromatin. In vitro, the P1 K49A substitution decreases protamine-DNA binding and alters DNA compaction/decompaction kinetics. Hence, a single amino acid substitution outside the P1 arginine core is sufficient to profoundly alter protein function and developmental outcomes, suggesting that protamine non-arginine residues are essential to ensure reproductive fitness.

biochemistry↗