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Biology subjects

Pan, L.

Publications and source records attributed to Pan, L..

6 recordsLinked to original sources

Allosteric Role of Substrate Occupancy Toward the Alignment of P-glycoprotein Nucleotide Binding Domains

P-glycoprotein (Pgp) is an ATP-binding cassette transporter that eliminates toxins from the cell but causes multidrug resistance in chemotherapies. The crystal structures of Pgp revealed drug-like compounds bound to an inward-facing conformation in which the energy-harnessing nucleotide binding domains (NBDs) were widely separated with no interfacial interaction. Following drug binding, inward-facing Pgp must transition to an NBD dimer conformation to achieve ATP binding and hydrolysis at canonical sites defined by both halves of the interface. However, given the high degree of flexibility shown for this transporter, it is difficult to envision how NBDs overcome entropic considerations for achieving proper alignment in order to form the canonical ATP binding site. We explored the hypothesis that substrate occupancy of the polyspecific drug-binding cavity plays a role in the proper alignment of NBDs using computational approaches. We conducted twelve atomistic molecular dynamics (MD) simulations (100-300 ns) on inward-facing Pgp in a lipid bilayer with and without small molecule substrates to ascertain effects of drug occupancy on NBD dimerization. Both apo- and drug-occupied simulations showed NBDs approaching each other compared to the crystal structures. Apo-Pgp reached a pseudo-dimerization in which NBD signature motifs for ATP binding exhibited a significant misalignment during closure. In contrast, occupancy of three established substrates positioned by molecular docking achieved NBD alignment that was much more compatible with a canonical NBD dimerization trajectory. Additionally, aromatic amino acids, known to confer the polyspecific drug-binding characteristic of the internal pocket, may also govern polyspecific drug access to the cavity. The enrichment of aromatics comprising the TM4-TM6 portal suggested a preferential pathway over the aromatic-poor TM10-TM12 for lateral drug entry from the lipid bilayer. Our study also suggested that drug polyspecificity is enhanced due to a synergism between multiple drug-domain interactions involving 36 residues identified in TM1, 5, 6, 7, 11 and 12.\n\nAuthor SummaryP-glycoprotein (Pgp) is an active drug pump known to cause clinical multi-drug resistance. The static atomic structure of Pgp was determined by trapping an inward-facing conformation bound to small molecule substrates by crystallization, however the effect of substrates on Pgp dynamics following binding is poorly understood. In this study, six apo-Pgp and six drug-occupied Pgp were simulated using unconstrained atomistic molecular dynamics (MD) for 100-300 ns. We demonstrate an allosteric communication of drug binding \"from the top down\", that is from the TMDs to the NBDs that promotes NBD alignment and trajectories that favor canonical ATP binding. Other analyses suggested that aromatic amino acids in both the central drug-binding cavity and the \"front portal\" (TM4/TM6) confer polyspecific recognition. Additionally, comparison of the thermal B-factors between the experimental measurement and MD simulation indicated that different physical and chemical environments (temperature, in surfo vs. in meso, solution compositions) only alter the regional scales of thermal fluctuations but not the patterns of these motions. Lastly, DCCM and normal mode analyses were used to decipher thermal motions and the motion correlations between various domains in Pgp, allowing us to propose a substrate allosteric mechanism and an energy conservation mechanism during the catalytic cycle.

biophysics

Structural and functional studies of the RBPJ-SHARP complex reveal conserved corepressor binding site

The Notch pathway is a conserved signaling mechanism that is essential for cell fate decisions during pre and postnatal development. Dysregulated signaling underlies the pathophysiology of numerous human diseases, most notably T-cell acute lymphoblastic leukemia. Receptor-ligand interactions result in changes in gene expression, which are regulated by the transcription factor CSL. CSL forms a complex with the intracellular domain of the Notch receptor and the transcriptional coactivator Mastermind, which is required to activate transcription of all Notch target genes. CSL can also function as repressor by interacting with corepressor proteins, e.g. SHARP in mammals and Hairless in Drosophila melanogaster; however, its role as a transcriptional repressor is not well understood. Here we determine the high-resolution structure of RBPJ, the mouse CSL ortholog, bound to the corepressor SHARP and DNA, which reveals a new mode of corepressor binding to CSL and an interesting example for how ligand binding sites evolve in proteins. Based on the structure, we designed and tested a number of mutants in biophysical, biochemical, and cellular assays to characterize the role of RBPJ as a repressor of Notch target genes. Our cellular studies clearly demonstrate that RBPJ mutants that are deficient for binding SHARP are incapable of repressing transcription from genes responsive to Notch signaling. Altogether, our structure-function studies of the RBPJ-SHARP corepressor complex bound to DNA provide significant insights into the repressor function of RBPJ and identify a new binding pocket on RBPJ that could be targeted for therapeutic benefit.

biochemistry

MiRNA expression profiles of serum exosomes derived from individuals with latent and active tuberculosis

Tuberculosis (TB) has become a leading cause of death worldwide, which is largely attributed to the difficulties in diagnosis and treatment of TB patients. Exosomes carrying RNA, particularly miRNA, have been indicated their functional and diagnostic potential in diseases, including tuberculosis (TB). In the present study, we performed RNA-seq based analysis on exosomal miRNA profiles for clinical specimens of healthy controls (HC), active tuberculosis (TB) and latent tuberculosis infection (LTBI). We identified many distinct up-regulated and down-regulated differentially expressed miRNA and further screened top 20 in each compared groups which might provide a potential panel for differentiation of HC, LTBI, and TB. We classified all the differentially expressed miRNAs into six expression patterns and identified three persistently up-regulated miRNA (hsa-miR-140-3p, hsa-miR-3184-5p and hsa-miR-423-3p) as potential markers during TB progression. Combined with our previously detected exsomal mRNA, we screened the genes overlapped with predicted mRNA targets of differentially expressed miRNA and analyzed their involvement in Biological Process, indicating a decreased signaling transduction and increased cell death in LTBI and TB. Our results indicate the selective packaging of RNA cargoes into exosomes under different stages of Mycobacterium tuberculosis infection and facilitate further study of TB pathogenesis and development.\n\nIMPORTANCEThe main reason for failure to eliminate TB is lack of understanding molecular mechanism of TB pathogenesis and difficulties in TB diagnosis and treatment. Exosomes provide a promising research tool because they are released from various cells containing valuable biochemical information related to diseases. We reveale distinct miRNA expression profile of the exosomes, which indicates selective packaging of RNA cargoes into exosomes under different stages of Mycobacterium tuberculosis infection. Further, we also provide evidence of related miRNA candidates potentially involving in TB progression and facilitating discovery of TB biomarkers.

microbiology

Mechanistic insight into the interactions of NAP1 with NDP52 and TAX1BP1 for the recruitment of TBK1

NDP52 and TAX1BP1, two SKICH domain-containing autophagy recetpors, play crucial roles in selective autophagy. The autophagic functions of NDP52 and TAX1BP1 are regulated by TBK1, which can indirectly associate with them through the adaptor protein NAP1. However, the molecular mechanism governing the interactions of NAP1 with NDP52 and TAX1BP1 as well as the effects induced by TBK1-mediated phosphorylation of NDP52 and TAX1BP1 remain elusive. Here, we reported the first atomic structures of the SKICH regions of NDP52 and TAX1BP1 in complex with NAP1, which not only uncover the mechanismtic basis underpinning the specific interactions of NAP1 with NDP52 and TAX1BP1, but also reveal the first binding mode of a SKICH domain. Moreover, we demonstrated that the phosphorylation of TAX1BP1 SKICH mediated by TBK1 may regulate the interaction between TAX1BP1 and NAP1. In all, our findings provide mechanistic insights into the NAP1-mediated recruitments of TBK1 to NDP52 and TAX1BP1, and are valuable for further understanding the functions of these proteins in selective autophagy.

biophysics

Effects of regional differences on the urinary proteomes of healthy Chinese individuals

Urine is a promising biomarker source for clinical proteomics studies. Although regional physiological differences are common in multi-center clinical studies, the presence of significant differences in the urinary proteomes of individuals from different regions remains unknown. In this study, morning urine samples were collected from healthy urban residents in three regions of China and urinary proteins were preserved using a membrane-based method (Urimem). The urine proteomes of 27 normal samples were analyzed using LC-MS/MS and compared among the three regions. We identified 1,898 proteins from Urimem samples using label-free proteome quantification, of which 62 urine proteins were differentially expressed among the three regions. Hierarchical clustering analysis showed that inter-regional differences caused less significant changes in the urine proteome than inter-sex differences. Of the 62 differentially expressed proteins, 10 have been reported to be disease biomarkers in previous clinical studies. Urimem facilitates urinary protein storage for large-scale urine sample collection, and thus accelerates biobank development and urine biomarker studies employing proteomics approaches. Regional differences are a confounding factor influencing the urine proteome and should be considered in future multi-center biomarker studies.

physiology

Evolution and genetics of precocious burrowing behavior in Peromyscus mice

A central challenge in biology is to understand how innate behaviors evolve between closely related species. One way to elucidate how differences arise is to compare the development of behavior in species with distinct adult traits. Here, we report that Peromyscus polionotus is strikingly precocious with regard to burrowing behavior, but not other behaviors, compared to its sister species P. maniculatus. In P. polionotus, burrows were excavated as early as 17 days of age, while P. maniculatus did not build burrows until 10 days later. Moreover, the well-known differences in burrow architecture between adults of these species--P. polionotus adults excavate long burrows with an escape tunnel, while P. maniculatus dig short, single-tunnel burrows--were intact in juvenile burrowers. To test whether this juvenile behavior is influenced by early-life environment, pups of both species were reciprocally cross-fostered. Fostering did not alter the characteristic burrowing behavior of either species, suggesting these differences are genetic. In backcross F2 hybrids, we show that precocious burrowing and adult tunnel length are genetically correlated, and that a single P. polionotus allele in a genomic region linked to adult tunnel length is predictive of precocious burrow construction. The co-inheritance of developmental and adult traits indicates the same genetic region--either a single gene with pleiotropic effects, or closely linked genes-- acts on distinct aspects of the same behavior across life stages. Such genetic variants likely affect behavioral drive (i.e. motivation) to burrow, and thereby affect both the development and adult expression of burrowing behavior.\n\nHighlightsO_LIJuvenile P. polionotus construct burrows precociously compared to its sister species P. maniculatus\nC_LIO_LICross-fostering does not alter species-specific burrowing behavior\nC_LIO_LIA QTL linked to adult tunnel length predicts developmental onset of burrow construction in hybrids\nC_LIO_LIPleiotropic genetic variant(s) may affect behavioral drive across life stages\nC_LI

animal behavior and cognition