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Biology subjects

Bai, X.-N.

Publications and source records attributed to Bai, X.-N..

2 recordsLinked to original sources

Antibodies against the capsid induced after intracranial AAV administration limits second administration in a dose dependent manner

Recombinant adeno-associated virus (rAAV) is a widely used viral vector for gene therapy. However, a limitation of AAV-mediated gene therapy is that patients are typically dosed only once. In this study, we investigated the possiblility to deliver multiple rounds of AAV through intracerebral injections in the mouse brain. We discovered a dose-dependent modulation of the second round AAV infection by the first round AAV injection in the brain-wide scales besides the injection region. High-dose AAV infection increases chemokines CXCL9 and CXCL10 to recruit the parenchymal infiltration of lymphocytes. Surprisingly, the blood-brain-barrier was relatively intact. Brain-wide dissection discovered the likely rountes of the infiltrated lymphocytes through perivascular space and ventricles. Further analysis using B-cell depleted mice revealed that B lymphocytes, but not T lymphocytes, played a critical role in inhibiting the second round AAV infection. Strategies against neutralizing antibodies had limited effects, while reducing the dosage for the first injection or switching the second AAV to a different serotype appeared to be more effective in antagonizing the first round AAV inhibition. Together, these results suggest that mammalian brains are not immunoprivileged for AAV infection, but multiple rounds of AAV gene therapy are still possible if designed carefully with proper doses and serotypes.

immunology↗

Efficient Dlx2-mediated astrocyte-to-neuron conversion and inhibition of neuroinflammation by NeuroD1

In vivo astrocyte-to-neuron (AtN) conversion induced by overexpression of neural transcriptional factors has great potential for neural regeneration and repair. Here, we demonstrate that a single neural transcriptional factor Dlx2 converts mouse striatal astrocytes into neurons in a dose-dependent manner. Lineage-tracing studies in Aldh1l1-CreERT2 mice confirm that Dlx2 can convert striatal astrocytes into DARPP32+ and Ctip2+ medium spiny neurons (MSNs). Time-course studies reveal a gradual conversion from astrocytes to neurons in 1 month, with a distinct intermediate state in-between astrocytes and neurons. Interestingly, when Dlx2-infected astrocytes start to lose astrocytic markers, the other local astrocytes proliferate to maintain astrocytic level in the converted areas. Unexpectedly, while Dlx2 efficiently reprograms astrocytes into neurons in the grey matter striatum, it also induces partial reprogramming of astrocytes in the white matter corpus callosum. Such partial reprogramming of white matter astrocytes is associated with neuroinflammation, which can be essentially suppressed by the addition of NeuroD1. Our results highlight the importance of investigating AtN conversion both in the grey matter and white matter in order to thoroughly evaluate therapeutic potentials. This study also unveils a critical role of anti-inflammation by NeuroD1 during AtN conversion.

neuroscience↗