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622 results on '"EPR effect"'

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1. IRGD-modified erythrocyte membrane biomimetic temozolomide nanodots for the treatment of glioblastoma.

2. Cancer nanomedicine: emergence, expansion, and expectations

4. Advantages of Nanomedicine in Cancer Therapy: A Review.

5. Cancer nanomedicine: emergence, expansion, and expectations.

6. Development, Characterization and Pharmacological Evaluation of Cannabidiol-Loaded Long Circulating Niosomes.

7. Innovative Design of Targeted Nanoparticles: Polymer–Drug Conjugates for Enhanced Cancer Therapy.

8. Targeting endothelial permeability in the EPR effect.

9. Nanoparticle-based drug delivery systems to enhance cancer immunotherapy in solid tumors.

10. New SDS-Based Polyelectrolyte Multicore Nanocarriers for Paclitaxel Delivery—Synthesis, Characterization, and Activity against Breast Cancer Cells.

11. Perspectives for Improving the Tumor Targeting of Nanomedicine via the EPR Effect in Clinical Tumors.

12. Precisive Colon Cancer Treatment: Exploring Novel Avenues Of Cancer Treatment Through Multistage Nanocarriers.

18. The role of size in PEGylated liposomal doxorubicin biodistribution and anti‐tumour activity

19. pH-Responsive Poly(ethylene glycol)- b -poly(2-vinylpyridine) Micelles for the Triggered Release of Therapeutics.

20. Influence of lung cancer model characteristics on tumor targeting behavior of nanodrugs.

21. Effect of Cellular and Microenvironmental Multidrug Resistance on Tumor-Targeted Drug Delivery in Triple-Negative Breast cancer.

22. Dual-targeting of brain tumors with nanovesicles

23. Human solid tumors and clinical relevance of the enhanced permeation and retention effect: a 'golden gate' for nanomedicine in preclinical studies?

24. Effect of Hypertension on EPR effect Induced by Polymer Nanomicelles in Renal Cell Carcinoma in vitro.

25. Supermagnetic Human Serum Albumin (HSA) Nanoparticles and PLGA-Based Doxorubicin Nanoformulation: A Duet for Selective Nanotherapy.

26. Extracellular matrix degrading enzyme with stroma-targeting peptides enhance the penetration of liposomes into tumors.

27. Prediction the clinical EPR effect of nanoparticles in patient-derived xenograft models.

28. Development, Characterization and Pharmacological Evaluation of Cannabidiol-Loaded Long Circulating Niosomes

29. Innovative Design of Targeted Nanoparticles: Polymer–Drug Conjugates for Enhanced Cancer Therapy

30. New SDS-Based Polyelectrolyte Multicore Nanocarriers for Paclitaxel Delivery—Synthesis, Characterization, and Activity against Breast Cancer Cells

31. Fighting Cancer Using Nanoparticles – Diagnosis, Treatment and Monitoring

32. Poly(Styrene-Co-Maleic Acid)-Conjugated 6-Aminofluorescein and Rhodamine Micelle as Macromolecular Fluorescent Probes for Micro-Tumors Detection and Imaging.

33. Strategies for persistent retention of macromolecules and nanoparticles in the blood circulation.

34. The role of size in PEGylated liposomal doxorubicin biodistribution and anti‐tumour activity.

35. Ultrasonic Microbubble Cavitation Enhanced Tissue Permeability and Drug Diffusion in Solid Tumor Therapy.

36. 35 years of discussions with Prof. Maeda on the EPR effect and future directions.

37. Perspectives for Improving the Tumor Targeting of Nanomedicine via the EPR Effect in Clinical Tumors

38. Changeable net charge on nanoparticles facilitates intratumor accumulation and penetration.

39. Effect of Tumor Targeted-Anthracycline Nanomedicine, HPMA Copolymer-Conjugated Pirarubicin (P-THP) against Gynecological Malignancies.

40. Strategies to improve the EPR effect: A mechanistic perspective and clinical translation.

41. Unravelling the in vivo dynamics of liposomes: Insights into biodistribution and cellular membrane interactions.

42. Monitoring EPR Effect Dynamics during Nanotaxane Treatment with Theranostic Polymeric Micelles.

44. Nanomedicine in Cancer

49. Noninvasive Molecular Imaging of the Enhanced Permeability and Retention Effect by 64Cu-Liposomes: In vivo Correlations with 68Ga-RGD, Fluid Pressure, Diffusivity and 18F-FDG

50. Monitoring EPR Effect Dynamics during Nanotaxane Treatment with Theranostic Polymeric Micelles

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