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Cuadros, T.

Publications and source records attributed to Cuadros, T..

3 recordsLinked to original sources

Non-ablative disease-modifying effects of magnetic resonance-guided focused ultrasound in neuromelanin-producing parkinsonian rodents

Age-dependent accumulation of the brain pigment neuromelanin has been implicated in the pathogenesis of Parkinsons disease (PD). In humans, intracellular and extracellular neuromelanin levels are increased in PD postmortem brains and boosting neuromelanin production in rodents compromises neuronal function and viability and triggers a PD-like phenotype. Focused ultrasound has been shown to reduce ultraviolet light-induced skin hyperpigmentation in guinea pig and to remove brain extracellular {beta}-amyloid plaques in Alzheimers mouse models. Here we show that repeated application of transcranial focused ultrasound (tFUS) is able to decrease intracellular and extracellular neuromelanin levels in neuromelanin-producing parkinsonian rats, compared to sham-treated animals, without the need for any additional therapeutic agent or intervention. Reduced neuromelanin levels in tFUS-treated animals were associated with decreased Lewy-like pathology, preserved dopaminergic phenotype, attenuated nigrostriatal degeneration, reduced glial activation, and long-term recovery of motor function. Our findings indicate that tFUS treatment applied at prodromal/early disease stages provides by itself extended structural and functional preservation of the nigrostriatal pathway in neuromelanin-producing parkinsonian rats without causing overt neuronal damage. This FDA-approved technology should thus be explored further as a noninvasive method with neuroprotective potential in PD and to maintain neuromelanin to levels below its pathogenic threshold within the aging population. One Sentence SummaryTranscranial focused ultrasound reduces age-dependent neuromelanin accumulation and provides therapeutic benefit in parkinsonian rats

neuroscience↗

Modelling human brain-wide pigmentation in rodents recapitulates age-related multisystem neurodegenerative deficits

One key limitation in developing effective treatments for neurodegenerative diseases is the lack of models accurately mimicking the complex physiopathology of the human disease. Humans accumulate with age the pigment neuromelanin inside neurons that synthesize catecholamines. Neurons reaching the highest neuromelanin levels preferentially degenerate in Parkinsons, Alzheimers and apparently healthy aging individuals. However, this brain pigment is not taken into consideration in current animal models because common laboratory species, such as rodents, do not produce neuromelanin. Here we generate a tissue-specific transgenic mouse, termed tgNM, that mimics the human age-dependent brain-wide distribution of neuromelanin within catecholaminergic regions, based on the constitutive catecholamine-specific expression of human melanin-producing enzyme tyrosinase. We show that, in parallel to progressive human-like neuromelanin pigmentation, these animals display age-related neuronal dysfunction and degeneration affecting numerous brain circuits and body tissues, linked to motor and non-motor deficits, reminiscent of early neurodegenerative stages. This model may open new research avenues in brain aging and neurodegeneration.

neuroscience↗

In vivo reduction of age-dependent neuromelanin accumulation mitigates features of Parkinson's disease

Humans accumulate with age the dark-brown pigment neuromelanin inside specific neuronal groups. Neurons with the highest neuromelanin levels are particularly susceptible to degeneration in Parkinsons disease, especially dopaminergic neurons of the substantia nigra (SN), the loss of which leads to characteristic motor Parkinsons disease symptoms. In contrast to humans, neuromelanin does not appear spontaneously in most animals, including rodents, and Parkinsons disease is an exclusively human condition. Using humanized neuromelanin-producing rodents, we recently found that neuromelanin can trigger Parkinsons disease pathology when accumulated above a specific pathogenic threshold. Here, by taking advantage of this newly developed animal model, we assessed whether the intracellular buildup of neuromelanin that occurs with age can be slowed down in vivo to prevent or attenuate Parkinsons disease. Because neuromelanin derives from the oxidation of free cytosolic dopamine, we enhanced dopamine vesicular encapsulation in the SN of neuromelanin-producing rats by viral vector-mediated overexpression of vesicular monoamine transporter 2 (VMAT2). This strategy reduced the formation of potentially toxic oxidized dopamine species that can convert into neuromelanin and maintained intracellular neuromelanin levels below their pathogenic threshold. Decreased neuromelanin production was associated with an attenuation of Lewy body-like inclusion formation and a long-term preservation of dopamine homeostasis, nigrostriatal neuronal integrity and motor function in these animals. Our results demonstrate the feasibility and therapeutic potential of modulating age-dependent intracellular neuromelanin production in vivo, thereby opening an unexplored path for the treatment of Parkinsons disease and, in a broader sense, brain aging.

neuroscience↗