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Abdulrahman, A.

Publications and source records attributed to Abdulrahman, A..

4 recordsLinked to original sources

Evaluating the effects of aging on biodistribution and gene silencing activity of lipid-siRNA conjugates delivered into cerebrospinal fluid

Aging is the primary risk factor for chronic neurodegenerative diseases and is associated with alterations to cerebrospinal fluid (CSF) flow and clearance. CSF delivery is currently the most clinically advanced route of administration for oligonucleotide therapeutics, but it remains poorly understood how aging, which is rarely incorporated into clinical trials, impacts biodistribution, gene silencing activity, and potential toxicity of these compounds. Here, we evaluated a lipid-siRNA conjugate (L2-siRNA) for potential age-related changes to CSF-mediated delivery, mRNA silencing, and safety. We found that L2-siRNA exhibited comparable biodistribution and on-target silencing of Huntingtin (Htt) between young and aged mice in all tested regions of the central nervous system (CNS) and across extended time points. Examining transport along CSF efflux routes revealed uptake in deep cervical lymph nodes and dura. Further, L2-siRNA did not generate detectable toxicity in the CNS or periphery of aged mice. A subset of studies benchmarked L2-siRNA against a C16 lipid-siRNA conjugate that recently entered clinical trials. Collectively, these results provide valuable insight into siRNA conjugate biodistribution and activity in the CNS in the context of aging and further establish the performance of L2-siRNA under conditions relevant to the treatment of neurodegenerative diseases.

bioengineering↗

BRET-Based Mitochondrial Subcompartment Localization Biosensors

The last decade has witnessed a marked increase in interest in mitochondria, whose dysfunction leads to the development of multiple diseases. Mitochondria are unique as they are highly compartmentalized organelles that are composed of two closely apposed membranes and whose biological function relies on the precise localization of nuclear-encoded proteins in distinct mitochondrial subcompartments. Here we developed a series of bioluminescence resonance energy transfer (BRET)-based localization biosensors to monitor the precise localization of proteins in different mitochondrial subcompartments (outer and inner membrane, intermembrane space at the inner boundary membrane, crista lumen and matrix) with a high spatial resolution (1-10 nm). These biosensors detected the correct localization and orientation of TOM20, TOM22, VDAC1, MICU1, ATP5F1C, OTC, and SIRT2/3 proteins in their respective subcompartments, as well as the translocation of BAX and Drp1 from the cytosol to mitochondria in intact cells. The localization sensors provide non-invasive tools to monitor protein localization and translocation to mitochondria in real-time with nanometer resolution in intact cells submitted to various stressors.

cell biology↗

Intravenous lipid-siRNA conjugate mediates gene silencing at the blood-brain barrier and blood-CSF barrier

Barriers of the central nervous system (CNS), such as the blood-brain barrier (BBB) and blood-cerebrospinal fluid barrier (BCSFB), regulate the two-way exchange of material between the blood and CNS. These barriers pose a considerable challenge for efficacious delivery of intravenously administered therapies into the CNS, motivating exploration of their function and ways to modulate their properties. While the BBB and BCSFB can become dysfunctional in patients with chronic CNS diseases, few studies have focused on strategies for targeting these interfaces. Here, we showed that an intravenously administered albumin-binding lipid-siRNA conjugate was delivered to and silences genes within brain endothelial cells and choroid plexus epithelial cells, which comprise the BBB and BCSFB, respectively. A single intravenous dose of lipid-siRNA conjugate was delivered to [~]100% of brain endothelial cells and major choroid plexus cell types, without any substantial delivery into brain parenchymal tissue. Sustained gene silencing was achieved in both brain endothelial cells (over two weeks) and bulk choroid plexus tissues (up to one month). Moreover, single cell RNA sequencing demonstrated gene knockdown in capillaries, venous endothelial cells, and choroid plexus epithelial cells without silencing genes in parenchymal cell populations. Collectively, this work establishes an effective nonviral framework to mediate gene inhibition in the brain barriers. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=156 SRC="FIGDIR/small/642142v1_ufig1.gif" ALT="Figure 1"> View larger version (43K): org.highwire.dtl.DTLVardef@b00a52org.highwire.dtl.DTLVardef@175a363org.highwire.dtl.DTLVardef@39be75org.highwire.dtl.DTLVardef@1072093_HPS_FORMAT_FIGEXP M_FIG C_FIG

bioengineering↗

Lipid-siRNA conjugate accesses a perivascular transport mechanism and achieves widespread and durable knockdown in the central nervous system

Short-interfering RNA (siRNA) has gained significant interest for treatment of neurological diseases by providing the capacity to achieve sustained inhibition of nearly any gene target. Yet, efficacious drug delivery throughout deep brain structures of the CNS remains a considerable hurdle for intrathecally administered therapeutics. We herein describe an albumin-binding lipid-siRNA conjugate that transports along meningeal and perivascular CSF pathways, leading to broad dispersion throughout the CNS parenchyma. We provide a detailed examination of the temporal kinetics of gene silencing, highlighting potent knockdown for up to five months from a single injection without detectable toxicity. Single-cell RNA sequencing further demonstrates gene silencing activity across diverse cell populations in the parenchyma and at brain borders, which may provide new avenues for neurological disease-modifying therapies.

bioengineering↗