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Biology subjects

Christensen, D. E.

Publications and source records attributed to Christensen, D. E..

3 recordsLinked to original sources

Lenacapavir allosterically remodels the HIV-1 capsid

Lenacapavir (LEN) is a highly potent, long-acting HIV-1 capsid inhibitor that holds exceptional promise for pre-exposure prophylaxis. LEN causes the mature viral capsid to rupture and lose integrity, but the underlying mechanism has been unclear. Here, we show that LEN is an allosteric modulator of HIV-1 capsid structure that breaks the capsids fullerene cone architecture in two steps: loss of high-curvature declinations occurs early, followed by failure of the capsid body. At the molecular level, LEN alters the non-covalent bonding interactions between capsid subunits and reduces local lattice curvature. LEN also alters the material properties of the capsid, by increasing brittleness. These results provide molecular rationales for how LEN remodels HIV-1 capsid structure and impairs the replication capacity of the virus.

microbiology↗

Cell-free reconstitution of HIV-1 innate immune sensing reveals the capsid is a molecular cloak that protects reverse transcripts from cGAS

Retroviruses can be detected by the innate immune sensor cyclic GMP-AMP synthase (cGAS), which recognizes reverse-transcribed DNA and activates an antiviral response. However, the extent to which HIV-1 shields its genome from cGAS recognition remains unclear. To study this process in mechanistic detail, we reconstituted reverse transcription, genome release, and innate immune sensing of HIV-1 in a cell-free system. We found that wild-type HIV-1 capsids protect viral genomes from cGAS even after completing reverse transcription. Viral DNA could be "deprotected" by thermal stress, capsid mutations, or reduced concentrations of inositol hexakisphosphate (IP6) that destabilize the capsid. Strikingly, the capsid inhibitor lenacapavir also disrupted viral cores and dramatically potentiated cGAS activity, both in vitro and in cellular infections. Our results provide biochemical evidence that the HIV-1 capsid lattice conceals the genome from cGAS and that chemical or physical disruption of the viral core can expose HIV-1 DNA and activate innate immune signaling.

microbiology↗

Uncertainty in Thermosensory Expectations Enhances an Illusion of Pain

The human brain has a remarkable ability to learn and update its beliefs about the world. Here, we investigate how thermosensory learning shapes our subjective experience of temperature and the misperception of pain in response to harmless thermal stimuli. Through computational modeling, we demonstrate that the brain uses a probabilistic predictive coding scheme to update beliefs about temperature changes based on their uncertainty. We find that these expectations directly modulate the perception of pain in the thermal grill illusion. Quantitative microstructural brain imaging revealed that the myeloarchitecture and iron content of the somatosensory cortex, the posterior insula and the amygdala reflect inter-individual variability in computational parameters related to learning and the degree to which uncertainty modulates illusory pain perception. Our findings offer a new framework to explain how the brain infers pain from innocuous thermal inputs. Our model has important implications for understanding the etiology of thermosensory symptoms in chronic pain conditions.

neuroscience↗