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Baghel, D.

Publications and source records attributed to Baghel, D..

3 recordsLinked to original sources

Lipid Mediated Formation of Antiparallel Aggregates in Cerebral Amyloid Angiopathy

Cerebral amyloid angiopathy (CAA) is a cerebrovascular disorder marked by amyloid-{beta} (A{beta}) deposition in blood vessel walls, leading to hemorrhage and recurring stroke. Despite significant overlap with Alzheimers disease (AD) through shared A{beta} pathology, the specific structural characteristics of A{beta} aggregates in CAA and their variations between stages of disease severity are yet to be fully understood. Traditional approaches relying on brain-derived fibrils can potentially overlook the polymorphic heterogeneity and chemical associations within vascular amyloids. This study utilizes sub-diffraction, label-free mid-infrared photothermal (MIP) spectroscopic imaging to directly probe the chemical structure and heterogeneity of vascular amyloid aggregates within human brain tissues across different CAA stages. Our results demonstrate a clear increase in {beta}-sheet content within vascular A{beta} deposits corresponding to disease progression. Crucially, we identify a significant presence of antiparallel {beta}-sheet structures, particularly prevalent in moderate/severe CAA. The abundance of antiparallel structures correlates strongly with co-localized lipids, implicating a lipid-mediated aggregation mechanism. We substantiate the ex-vivo observations using nanoscale AFM-IR spectroscopy and demonstrate that A{beta}40 aggregated in vitro with brain-derived lipids adopts antiparallel structural distributions mirroring those found in CAA vascular lesions. This work provides critical insights into the structural distributions of A{beta} aggregates in CAA, highlighting the presence of polymorphs typically associated with transient intermediates, which may lead to alternate mechanisms for neurotoxicity.

neuroscience↗

Heterotypic Seeding Generates Mixed Amyloid Polymorphs

Aggregation of the amyloid {beta} (A{beta}) peptide into fibrils represents one of the major biochemical pathways underlying the development of Alzheimers disease (AD). Extensive studies have been carried out to understand the role of fibrillar seeds on the overall kinetics of amyloid aggregation. However, the precise effect of seeds that are structurally or sequentially different from A{beta} on the structure of the resulting amyloid aggregates is yet to be fully understood. In this work, we use nanoscale infrared spectroscopy to probe the spectral facets of individual aggregates formed by aggregating A{beta}42 with antiparallel fibrillar seeds of A{beta} (16-22) and E22Q A{beta} (1-40) Dutch mutant and demonstrate that A{beta} can form heterotypic or mixed polymorphs that deviate significantly from its expected parallel cross {beta} structure. We further show that formation of heterotypic aggregates is not limited to coaggregation of A{beta} and its isomers, and that the former can form heterotypic fibrils with alpha synuclein and brain protein lysates. These findings highlight the complexity of A{beta} aggregation in AD and underscore the need to explore how A{beta} interacts with other brain components, which is crucial for developing better therapeutic strategies for AD.

biophysics↗

Nanoscale infrared spectroscopy identifies parallel to antiparallel beta sheet transformation of Aβ fibrils

Spontaneous aggregation of amyloid beta (A{beta}) proteins leading to the formation of oligomers and eventually into fibrils has been identified as a key pathological signature of Alzheimers disease. Structure of late stage aggregates have been studied in depth by conventional structural biology techniques including Nuclear Magnetic Resonance, X-ray crystallography and Infrared Spectroscopy; however the structure of early-stage aggregates is less known due to their transient nature. As a result, the structural evolution of amyloid aggregates from its early oligomers to mature fibril is still not fully understood. Here we have applied AFM-IR nanospectroscopy to investigate the aggregation of A{beta} 16-22, which spans the amyloidogenic core of the amyloid beta peptide. Our results demonstrate that A{beta} 16-22 involves a structural transition from oligomers with parallel beta sheets to antiparallel fibrils through disordered and possibly helical intermediate fibril structures, contrary to the known aggregation pathway of full-length A{beta}.

biophysics↗