148 results on '"Chen, Qingrong"'
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2. Bidirectional phase retrieval: Protecting the imaging of cells and tissues from interference of noise on the carrier
3. High‐Performance Co‐Solvent Engineering Electrolyte for Obtaining a High‐Voltage and Low‐Cost K+ Battery Operating from −25 to 50 °C
4. The Relationship among Loneliness, Emotional Flexibility and Resilience in Left-behind Children: A Longitudinal Study
5. Nitric oxide inhibits ten-eleven translocation DNA demethylases to regulate 5mC and 5hmC across the genome
6. Corrigendum: Glioblastoma survival is associated with distinct proteomic alteration signatures post chemoirradiation in a large-scale proteomic panel
7. Constructing MXene /coconut derived carbon composite as a robust anode material towards enhanced lithium storage
8. The ESCRT protein CHMP5 promotes T cell leukemia by controlling BRD4-p300-dependent transcription
9. Neurolinguistics in China
10. Research on key technologies of data security and privacy protection in Internet of Things group intelligence
11. Distinct functional patterns in child and adolescent bipolar and unipolar depression during emotional processing
12. Geometric error modeling and compensation for high precision composite optical measurement systems
13. Design method of dual-band synchronous zoom microscope optical system based on coaxial Kohler illumination
14. Abundant binary promoter switches in lineage-determining transcription factors indicate a digital component of cell fate determination
15. A Membrane‐Targeted Photosensitizer Prevents Drug Resistance and Induces Immune Response in Treating Candidiasis
16. Aggregation-induced emission: recent applications in infectious diseases
17. Automatic aberration compensation for digital holographic microscopy based on bicubic downsampling and improved minimization of global phase gradients
18. A method for converting the existing mechanical zoom optical system to the focus tunable lens zoom optical system
19. Facile synthesis of spherical Li3V2(PO4)3/C and 2LiVPO4F⋅Li3V2(PO4)3/C cathode materials by spray drying for lithium-ion battries
20. Design of the dual-band shared-aperture asynchronous zoom optical system using focus tunable lenses
21. Glioblastoma survival is associated with distinct proteomic alteration signatures post chemoirradiation in a large-scale proteomic panel
22. Polarization dependent light-induced phase segregation in inorganic CsPb(BrxI1−x)3 perovskite microcrystals
23. Data from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
24. Supplementary Table S2 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
25. Supplementary Figure S1 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
26. Supplementary Figure S3 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
27. Supplementary Methods and References from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
28. Supplementary Figure S6 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
29. Supplementary Figure S10 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
30. Supplementary Figure S5 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
31. Supplementary Figure S7 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
32. Supplementary Figure S4 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
33. Supplementary Figure S2 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
34. Supplementary Figure S8 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
35. Supplementary Figure S4 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
36. Supplementary Figure S11 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
37. Supplementary Figure S6 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
38. Supplementary Figure S10 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
39. Supplementary Figure S5 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
40. Supplementary Figure S8 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
41. Supplementary Table S1 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
42. Supplementary Figure S1 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
43. Supplementary Figure S11 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
44. Data from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
45. Supplementary Figure S9 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
46. Supplementary Figure S2 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
47. Supplementary Figure S7 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
48. Supplementary Methods and References from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
49. Supplementary Figure S9 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
50. Supplementary Figure S3 from Mitochondrial Matrix Protease ClpP Agonists Inhibit Cancer Stem Cell Function in Breast Cancer Cells by Disrupting Mitochondrial Homeostasis
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