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Liping Li

Publications and source records attributed to Liping Li.

3 recordsLinked to original sources

Post-Translational Modifications in Traumatic Brain Injury: Decoding the Proteomic Landscape and Molecular Mechanisms of Secondary Injury.

Traumatic brain injury (TBI) initiates a complex secondary injury cascade that significantly contributes to long-term neurological deficits, with post-translational modifications (PTMs) emerging as pivotal molecular regulators of this process. Unlike primary mechanical damage, secondary injury evolves over hours to years and involves intricate proteomic alterations that changes in gene expression alone cannot fully explain. PTMs-including phosphorylation, ubiquitination, acetylation, SUMOylation, glycosylation, and emerging modifications such as succinylation, lactylation, and nitrosylation-serve as dynamic molecular switches that fine-tune protein function, stability, localization, and interactions in response to TBI-induced stressors. These modifications play dual roles: they can either promote neuroprotection and recovery or drive pathological processes such as neuronal cell death (via apoptosis, necroptosis, and ferroptosis), neuroinflammation through glial activation and inflammasome signaling, blood-brain barrier disruption, mitochondrial dysfunction, and impaired synaptic plasticity. Critically, extensive crosstalk exists among different PTM pathways-such as the interplay between phosphorylation and ubiquitination in protein degradation or the competitive balance between acetylation and SUMOylation-that collectively shape cellular fate after injury. This nuanced regulatory network presents both challenges and opportunities for therapeutic intervention. Targeting PTM-related enzymes, including kinases, phosphatases, E3 ligases, and histone deacetylases, has shown promise in preclinical models, while novel strategies like Proteolysis-Targeting Chimeras (PROTACs) and repurposed drugs (e.g., metformin, resveratrol) offer innovative avenues for modulating the PTM landscape. Advances in high-throughput proteomics and mass spectrometry are enabling the mapping of TBI-specific PTM signatures across spatiotemporal phases, facilitating the identification of pro-survival versus pro-death modification thresholds. Despite hurdles in clinical translation-such as blood-brain barrier penetration and off-target effects-the growing understanding of PTM dynamics underscores their potential as both biomarkers and therapeutic targets. Future TBI management may thus rely on precision medicine approaches that integrate multi-PTM profiling to guide combination therapies aimed at tipping the balance toward neural repair and functional recovery.

Brain Injuries, Traumatic

First Cornelia de Lange Syndrome Type 4 Caused by the Gonadal Mosaicism of RAD21 Deletion.

BACKGROUND: Cornelia de Lange syndrome (CdLS) currently has seven known causative genes, inherited in an autosomal or X-linked dominant pattern. Clinical features are variable, including dysmorphic facial features, intrauterine and/or postnatal growth retardation, multiple organ system malformations, and neurodevelopmental disorders. Type 4 of CdLS caused by RAD21 gene has a relatively mild phenotype. METHODS: Here, we report a pair of siblings from a Chinese family who both have similar dysmorphic facial features, cleft palate, spina bifida occulta, and limb phenotypes. Whole-genome sequencing (WGS) was performed to analyze the genetic basis of their condition. Gap-PCR was subsequently employed to map the breakpoints in the affected siblings' peripheral blood samples. Additionally, the copy number status of the parents and the father's sperm DNA were evaluated using Gap-PCR and digital PCR (dPCR). RESULTS: Through WGS analysis, a heterozygous deletion was found in the 8q23.3-8q24.11 region of both patients, which includes the full-length RAD21 gene. And we mapped the breakpoint with the peripheral blood samples of the affected siblings using Gap-PCR. The parents' peripheral blood had normal copy number. The father's sperm DNA was negative for the deletion by both Gap-PCR and dPCR, whereas the mother's peripheral blood was also negative, suggesting the deletion is likely due to maternal gonadal mosaicism. CONCLUSIONS: We report a pair of siblings with a complete loss of RAD21, with evidence supporting maternal gonadal mosaicism. This information will be helpful for genetic counseling for Type 4 of CdLS.

Humans

Genome-Wide Identification of the R2R3-MYB Gene Family in Solanum americanum and Functional Analysis of Its Role in Fruit Coloration.

Anthocyanins are key secondary metabolites responsible for fruit coloration in plants, and their biosynthesis is largely regulated by R2R3-MYB transcription factors. However, the R2R3-MYB regulators controlling fruit anthocyanin accumulation in wild Solanum species remain poorly understood. Here, Solanum americanum was used to identify candidate R2R3-MYB genes associated with fruit coloration through genome-wide identification, phylogenetic analysis, synteny analysis, expression profiling, and virus-induced gene silencing (VIGS). A total of 122 SaMYB genes were identified, and phylogenetic analysis revealed that SaMYB proteins clustered with Arabidopsis thaliana R2R3-MYB members in conserved subgroups, suggesting evolutionary conservation of this family. Synteny analysis identified 37 syntenic gene pairs among SaMYB genes, and the Ka/Ks values of all analyzable gene pairs were below 1, indicating that these duplicated genes are subject to functional constraint. Integrated analysis of phylogenetic relationships, protein structures, promoter cis-elements, and fruit developmental expression patterns identified SaMYB59 and SaMYB106 as candidate regulators of anthocyanin accumulation. VIGS analysis demonstrated that silencing SaMYB106 reduced purple coloration, decreased anthocyanin content, and downregulated the expression of the structural gene DFR. These results indicate that SaMYB106 functions as a positive regulator of fruit anthocyanin accumulation in S. americanum. This study provides insights into the molecular basis of fruit coloration in wild Solanum species.

Solanum americanum