Javascript must be enabled to continue!
Divergent C. elegans toxin alleles are suppressed by distinct mechanisms
View through CrossRef
Toxin-antidote elements (TAs) are selfish DNA sequences that bias their transmission to the next generation. TAs typically consist of two linked genes: a toxin and an antidote. The toxin kills progeny that do not inherit the TA, while the antidote counteracts the toxin in progeny that inherit the TA. We previously discovered two TAs in C. elegans that follow the canonical TA model of two linked genes: peel-1/zeel-1 and sup-35/pha-1. Here, we report a new TA that exists in three distinct states across the C. elegans population. The canonical TA, which is found in isolates from the Hawaiian islands, consists of two genes that encode a maternally deposited toxin (TMRL-1) and a zygotically expressed antidote (AMRL-1). The toxin induces larval lethality in embryos that do not inherit the antidote gene. A second version of the TA has lost the toxin gene but retains a partially functional antidote. Most C. elegans isolates, including the standard laboratory strain N2, carry a highly divergent allele of the toxin that has retained its activity, but have lost the antidote through pseudogenization. Multiple lines of evidence suggest that the N2 tmrl-1 allele is recognized by piRNAs, leading to MUT-16-dependent 22G siRNA production and post-transcriptional silencing of the transcript. The N2 haplotype represents the first naturally occurring unlinked toxin-antidote system where the toxin is post-transcriptionally suppressed by endogenous small RNA pathways.
eLife Sciences Publications, Ltd
Title: Divergent C. elegans toxin alleles are suppressed by distinct mechanisms
Description:
Toxin-antidote elements (TAs) are selfish DNA sequences that bias their transmission to the next generation.
TAs typically consist of two linked genes: a toxin and an antidote.
The toxin kills progeny that do not inherit the TA, while the antidote counteracts the toxin in progeny that inherit the TA.
We previously discovered two TAs in C.
elegans that follow the canonical TA model of two linked genes: peel-1/zeel-1 and sup-35/pha-1.
Here, we report a new TA that exists in three distinct states across the C.
elegans population.
The canonical TA, which is found in isolates from the Hawaiian islands, consists of two genes that encode a maternally deposited toxin (TMRL-1) and a zygotically expressed antidote (AMRL-1).
The toxin induces larval lethality in embryos that do not inherit the antidote gene.
A second version of the TA has lost the toxin gene but retains a partially functional antidote.
Most C.
elegans isolates, including the standard laboratory strain N2, carry a highly divergent allele of the toxin that has retained its activity, but have lost the antidote through pseudogenization.
Multiple lines of evidence suggest that the N2 tmrl-1 allele is recognized by piRNAs, leading to MUT-16-dependent 22G siRNA production and post-transcriptional silencing of the transcript.
The N2 haplotype represents the first naturally occurring unlinked toxin-antidote system where the toxin is post-transcriptionally suppressed by endogenous small RNA pathways.
Related Results
ВОЗМОЖНАЯ РОЛЬ РЕЦЕПТОРОВ ДОФАМИНА DOP-1, DOP-2 И DOP-3 В МОДУЛЯЦИИ ЧУВСТВИТЕЛЬНОСТИ ПОЧВЕННОЙ НЕМАТОДЫ Caenorhabditis elegans К ТОКСИЧЕСКОМУ ДЕЙСТВИЮ ИОНОВ СВИНЦА
ВОЗМОЖНАЯ РОЛЬ РЕЦЕПТОРОВ ДОФАМИНА DOP-1, DOP-2 И DOP-3 В МОДУЛЯЦИИ ЧУВСТВИТЕЛЬНОСТИ ПОЧВЕННОЙ НЕМАТОДЫ Caenorhabditis elegans К ТОКСИЧЕСКОМУ ДЕЙСТВИЮ ИОНОВ СВИНЦА
Проведено изучение возможной роли рецепторов дофамина DOP-1, DOP-2 и DOP-3 в модуляции чувствительности почвенной нематоды Caenorhabditis elegans к токсическому действию нитрата св...
The entry of diphtheria toxin into the mammalian cell cytoplasm: evidence for lysosomal involvement.
The entry of diphtheria toxin into the mammalian cell cytoplasm: evidence for lysosomal involvement.
Lysosomotropic amines, such as ammonium chloride, are known to protect cells from the cytotoxic effects of diphtheria toxin. These drugs are believed to inhibit the transport of th...
Cognitive Abilities and Creative Behaviors: CAB‐5 and Consequences
Cognitive Abilities and Creative Behaviors: CAB‐5 and Consequences
AbstractThe validity of six indices of divergent production is examined with reference to creative output in eight content domains: visual arts, music, literature, theater, science...
Comparative population dynamics of two sympatric Palaemon shrimps (Palaemon adspersus Rathke, 1836 and Palaemon elegans Rathke, 1836) from the Southeast Caspian Sea
Comparative population dynamics of two sympatric Palaemon shrimps (Palaemon adspersus Rathke, 1836 and Palaemon elegans Rathke, 1836) from the Southeast Caspian Sea
This study provides comparative information about population dynamics for the Palaemon adspersus Rathke, 1836 and P. elegans Rathke, 1836 shrimps on the southeastern coast of the C...
Evaluation of Known Human PDE Inhibitors Against Nematode PDE4s
Evaluation of Known Human PDE Inhibitors Against Nematode PDE4s
Abstract
Parasitic nematodes are responsible for more than one and a half billion infections world-wide. The drugs developed against these infect...
Cell death analysis of recombinant mature epsilon toxin on the kidney cell line
Cell death analysis of recombinant mature epsilon toxin on the kidney cell line
Background and Objectives: Epsilon toxin is the third hazardous bacterial toxin causing ABS enterotoxaemia in domestic animal. In addition, epsilon toxin is known as a biological w...
Identification of Small Molecule Inhibitors of Clostridium perfringens ε-Toxin Cytotoxicity Using a Cell-Based High-Throughput Screen
Identification of Small Molecule Inhibitors of Clostridium perfringens ε-Toxin Cytotoxicity Using a Cell-Based High-Throughput Screen
The Clostridium perfringens epsilon toxin, a select agent, is responsible for a severe, often fatal enterotoxemia characterized by edema in the heart, lungs, kidney, and brain. The...
Resection of DNA double strand breaks in the germline of Caenorhabditis elegans
Resection of DNA double strand breaks in the germline of Caenorhabditis elegans
<p>Repair of double-strand DNA breaks (DSBs) by the homologous recombination (HR) pathway results in crossovers (COs) required for a successful first meiotic division. DSB re...

