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Biology subjects

Zheng, I.

Publications and source records attributed to Zheng, I..

4 recordsLinked to original sources

A tripartite mechanism licenses RNA polymerase import into the phage nucleus

Nucleus-forming jumbo phages import a phage-encoded non-virion RNA polymerase (nvRNAP) into a proteinaceous nucleus, but how it is selected for import is unknown. Here, we identify an import pathway that couples nvRNAP subunit interactions with phage-encoded import factors. Maximal nvRNAP import requires a novel factor Imp7 (gp166) and the essential import factor Imp1. Imp7 is essential at environmental temperatures (20 C), where impaired nvRNAP import causes a profound loss of middle and late transcription and blocks phage DNA replication. Import of individual nvRNAP subunits also depends on other subunits, consistent with import licensing at the level of an assembled complex. In the absence of middle transcription and DNA replication, the phage nucleus surprisingly still assembles and segregates from the cytoplasm, demonstrating that nvRNAP nuclear localization and activity are not a critical checkpoint for nucleus assembly. Together, these findings define a specialized pathway for nuclear import of the multi-subunit RNAP and reveal that nuclear compartment assembly precedes the transcriptional and replicative programs required for its maturation.

microbiology↗

GluDs are ionotropic dopamine receptors tuned by G-proteins

Dopamine is a neurotransmitter essential for cognition, and its dysregulation is associated with neurological diseases1,2. Historically, dopamine has been understood to signal exclusively through metabotropic receptors3. Delta-type ionotropic glutamate receptors (GluDs), which have recently been established as ligand-gated ion channels4,5, are fundamental for synaptic maintenance, are implicated in neurological disorders, and co-localize with dopaminergic machinery. Here, we report that dopamine is a direct agonist of GluDs, eliciting ionotropic activity, as visualized by cryo-electron microscopy (cryo-EM), bilayer recordings, mutagenesis, and patch clamp recordings. Dopamine binds to the GluD ligand binding domain, inducing clamshell closure and channel activation through a distinct molecular interface. GluD channel activity is tightly regulated by G-proteins, which act as molecular switches to tune GluD activity: free G{beta}{gamma} inhibits ligand-gating, while G or inactive G-protein heterotrimers enable dopamine-induced GluD currents. This tuning of GluD activity by G-proteins is uncoupled in a point mutation associated with neurodegeneration. These findings expand mechanisms of neuronal dopaminergic signaling, uncover how G-proteins tune GluD channel activity, and provide a framework for targeting GluDs in neurological diseases.

biophysics↗

Molecular basis for ligand-gating of the human GluD1 receptor

The delta-type ionotropic glutamate receptors (iGluRs) GluD1 and GluD2 are ligand-gated ion channels that are fundamental for regulating both excitatory and inhibitory synapses. Rising evidence points to the role of GluD1 in the development of neurological diseases. However, the ultrastructure of human GluD1 (hGluD1) and the molecular basis for its ligand-gating remain unclear. Here, we define the structure of hGluD1 and resolve its ligand-gating mechanism using cryo-electron microscopy (cryoEM) and single channel bilayer recording. While hGluD1 exhibits a non-swapped architecture, it contains conserved iGluR moieties that enable ligand-gating, such as a ligand-binding domain (LBD) tethered to a transmembrane ion channel. Binding of the neurotransmitter {gamma}-aminobutyric acid (GABA) or D-serine to the LBD enables cation influx through the hGluD1 ion channel. Our findings delineate the molecular architecture and function of hGluD1, provide foundations for understanding patient mutations in hGluD1, and will invigorate therapeutic development against hGluD1.

biophysics↗

A strong priority effect in the assembly of a specialized insect-microbe symbiosis

Microbial community assembly is determined in part by interactions between taxa that colonize ecological niches available within habitat patches. The outcomes of these interactions, and by extension the trajectory of community assembly, can display priority effects - dependency on the order in which taxa first occupy these niches. The underlying mechanisms of these phenomena vary from system to system and are often not well resolved. Here, we characterize priority effects in colonization of the squash bug (Anasa tristis) by bacterial symbionts from the genus Caballeronia, using pairs of strains that are known to strongly compete during host colonization, as well as strains that are isogenic and thus functionally identical. By introducing symbiont strains into individual bugs in a sequential manner, we show that within-host populations established by the first colonist are extremely resistant to invasion, regardless of strain identity and competitive interactions. By knocking down the population of an initial colonist with antibiotics, we further show that colonization success by the second symbiont is still diminished even when space in the symbiotic organ is available and physically accessible for colonization. We propose a paradigm in which resident symbionts exclude subsequent infections by manipulating the host environment, partially but not exclusively by eliciting tissue remodeling of the symbiont organ. ImportanceHost-associated microbial communities underpin critical ecosystem processes and human health, and their ability to do so is determined in turn by the various processes that shape their composition. While natural selection acts on competing genotypes and species during community assembly, the manner by which selection determines the trajectory of community assembly can differ depending on the sequence by which taxa establish within that community. We document this phenomenon, known as a priority effect, during experimental colonization of a North American insect pest, the squash bug Anasa tristis, by its betaproteobacterial symbionts in the genus Caballeronia. Our study demonstrates how stark, strain-level variation can emerge in specialized host-microbe symbioses simply through differences in the order by which strains colonize the host. Understanding the mechanistic drivers of community structure in host-associated microbiomes can highlight both pitfalls and opportunities for the engineering of these communities and their constituent taxa for societal benefit.

microbiology↗