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Hyperpolarized NMR study of the impact of alzheimer's disease on diabetes using a novel rat model.

Most researchers have long focused on linkage between type 2 diabetes (T2D) and the increased risk of Alzheimer's disease (AD) but have often overlooked whether AD modulates T2D. Investigating the reciprocal interaction between two complex diseases provides perspectives on the mechanistic linkage. The endeavor, however, confronts challenges without a robust rodent model that develops T2D and AD as the animal ages. Cross breeding a T2D rat with a hemizygous TgF344AD +/- rat that contains the mutant human amyloid precursor protein (APPsw) and the presenilin 1 (PS1ΔE9) genes has produced a new T2D-AD +/- rat model. The T2D-AD +/- rat expresses both the T2D and AD phenotypes as the animal ages. As AD progresses, the time to T2D onset decreases, and the diabetes severity increases. Hyperpolarized NMR experiments using dynamic nuclear polarization (DNP) show that T2D and T2D-AD rats share a common metabolic impairment in the brain pyruvate dehydrogenase (PDH) activity as reflected in the NMR determined decline in the bicarbonate/lactate (bic/lac) ratio. The bic/lac ratio decreases in both T2D and T2D-AD brain. AD exacerbates the decline of the bic/lac ratio.

Animals

Hyperpolarized NMR Reveals Low-Populated Folding Intermediates in DNA.

Nuclear magnetic resonance (NMR) spectroscopy is the only biophysical technique capable of characterizing nucleic acid structures at atomic resolution under near-physiological liquid-state conditions. Still, it is fundamentally limited by intrinsically low sensitivity, particularly when analyzing high-molecular-weight, low-abundance, or polymorphic targets, such as DNAs (DNA). In this study, we demonstrate that hyperpolarized aqueous buffers generated via dissolution dynamic nuclear polarization (dDNP) significantly enhance the 1H NMR signals of multiple DNA motifs. The resonances of labile imino and amino protons of DNAs dissolved in hyperpolarized buffers are enhanced up to ∼200-fold and ∼370-fold, respectively. These intense signals serve a 2-fold purpose: (i) as structural fingerprints of DNA folding topologies and (ii) they enable the direct observation of low-populated folding intermediates in DNA polymorphs, such as G-quadruplexes (G4) and i-motifs (iM), which remain undetectable by standard methods. Thus, our findings establish hyperpolarized NMR as a high-sensitivity method for probing DNA structures and folding intermediates across a wide range of motifs, opening possible avenues in liquid biopsy applications and cell-free DNA.

DNA