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72 results on '"David E. Sleat"'

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1. Chronic Enzyme Replacement to the Brain of a Late Infantile Neuronal Ceroid Lipofuscinosis Mouse Has Differential Effects on Phenotypes of Disease

3. Comparative Analysis of Quantitative Mass Spectrometric Methods for Subcellular Proteomics

4. Lysosomal protein thermal stability does not correlate with cellular half-life: global observations and a case study of tripeptidyl-peptidase 1

5. Loss of Niemann-Pick C1 or C2 protein results in similar biochemical changes suggesting that these proteins function in a common lysosomal pathway.

6. Proteomic Analysis of Brain and Cerebrospinal Fluid from the Three Major Forms of Neuronal Ceroid Lipofuscinosis Reveals Potential Biomarkers

7. Chronic Enzyme Replacement to the Brain of a Late Infantile Neuronal Ceroid Lipofuscinosis Mouse Has Differential Effects on Phenotypes of Disease

8. Accounting for Protein Subcellular Localization: A Compartmental Map of the Rat Liver Proteome

9. Protein thermal stability does not correlate with cellular half-life: Global observations and a case study of tripeptidyl-peptidase 1

10. Analysis of Brain and Cerebrospinal Fluid from Mouse Models of the Three Major Forms of Neuronal Ceroid Lipofuscinosis Reveals Changes in the Lysosomal Proteome

11. Lysosomal enzyme tripeptidyl peptidase 1 plays a role in degradation of beta amyloid fibrils

12. Analysis of large-scale whole exome sequencing data to determine the prevalence of genetically-distinct forms of neuronal ceroid lipofuscinosis

13. Inducible transgenic expression of tripeptidyl peptidase 1 in a mouse model of late-infantile neuronal ceroid lipofuscinosis

14. Using whole-exome sequencing to investigate the genetic bases of lysosomal storage diseases of unknown etiology

15. A Basic ApoE-Based Peptide Mediator to Deliver Proteins across the Blood-Brain Barrier: Long-Term Efficacy, Toxicity, and Mechanism

16. Effective Intravenous Therapy for Neurodegenerative Disease With a Therapeutic Enzyme and a Peptide That Mediates Delivery to the Brain

17. Proteomic analysis of mouse models of Niemann-Pick C disease reveals alterations in the steady-state levels of lysosomal proteins within the brain

18. Large-volume Intrathecal Enzyme Delivery Increases Survival of a Mouse Model of Late Infantile Neuronal Ceroid Lipofuscinosis

19. Mass Spectrometry-based Protein Profiling to Determine the Cause of Lysosomal Storage Diseases of Unknown Etiology

20. Proteomics of the lysosome

21. Genetic modulation of apoptotic pathways fails to alter disease course in tripeptidyl-peptidase 1 deficient mice

22. Acid phosphatase 5 is responsible for removing the mannose 6-phosphate recognition marker from lysosomal proteins

23. Proteomics Analysis of Serum from Mutant Mice Reveals Lysosomal Proteins Selectively Transported by Each of the Two Mannose 6-Phosphate Receptors

24. Do mammalian NPC1 and NPC2 play a role in intestinal cholesterol absorption?

25. Identification and Validation of Mannose 6-Phosphate Glycoproteins in Human Plasma Reveal a Wide Range of Lysosomal and Non-lysosomal Proteins

26. Identification of Sites of Mannose 6-Phosphorylation on Lysosomal Proteins

27. Intracranial Delivery of CLN2 Reduces Brain Pathology in a Mouse Model of Classical Late Infantile Neuronal Ceroid Lipofuscinosis

28. Genetic evidence for nonredundant functional cooperativity between NPC1 and NPC2 in lipid transport

29. Potential Pitfalls and Solutions for Use of Fluorescent Fusion Proteins to Study the Lysosome

30. Identification of HE1 as the Second Gene of Niemann-Pick C Disease

31. A mutation in the ovine cathepsin D gene causes a congenital lysosomal storage disease with profound neurodegeneration

32. Biochemical characterization of a lysosomal protease deficient in classical late infantile neuronal ceroid lipofuscinosis (LINCL) and development of an enzyme-based assay for diagnosis and exclusion of LINCL in human specimens and animal models

33. Subcellular localization of mannose 6-phosphate glycoproteins in rat brain

34. Mutational Analysis of the Defective Protease in Classic Late-Infantile Neuronal Ceroid Lipofuscinosis, a Neurodegenerative Lysosomal Storage Disorder

35. Structural Organization and Sequence ofCLN2,the Defective Gene in Classical Late Infantile Neuronal Ceroid Lipofuscinosis

36. Mouse mutants lacking the cation-independent mannose 6-phosphate/insulin-like growth factor II receptor are impaired in lysosomal enzyme transport: comparison of cation-independent and cation-dependent mannose 6-phosphate receptor-deficient mice

37. Ligand Binding Specificities of the Two Mannose 6-Phosphate Receptors

38. Extending the mannose 6-phosphate glycoproteome by high resolution/accuracy mass spectrometry analysis of control and acid phosphatase 5-deficient mice

39. Rat Brain Contains High Levels of Mannose-6-phosphorylated Glycoproteins Including Lysosomal Enzymes and Palmitoyl-Protein Thioesterase, an Enzyme Implicated in Infantile Neuronal Lipofuscinosis

40. Systemic administration of tripeptidyl peptidase I in a mouse model of late infantile neuronal ceroid lipofuscinosis: effect of glycan modification

41. Classification of subcellular location by comparative proteomic analysis of native and density-shifted lysosomes

42. Transcriptional activity and mutational analysis of recombinant vesicular stomatitis virus RNA polymerase

43. Glial fibrillary acidic protein is elevated in the lysosomal storage disease classical late-infantile neuronal ceroid lipofuscinosis, but is not a component of the storage material

44. Restricted replication of vesicular stomatitis virus in T lymphocytes is coincident with a deficiency in a cellular protein kinase required for viral transcription

45. A single nucleotide change within a plant virus satellite RNA alters the host specificity of disease induction

46. Dipeptidyl-peptidase I does not functionally compensate for the loss of tripeptidyl-peptidase I in the neurodegenerative disease late-infantile neuronal ceroid lipofuscinosis

47. The mannose 6-phosphate glycoprotein proteome

48. Intraventricular enzyme replacement improves disease phenotypes in a mouse model of late infantile neuronal ceroid lipofuscinosis

49. Residual levels of tripeptidyl-peptidase I activity dramatically ameliorate disease in late infantile neuronal ceroid lipofuscinosis

50. Timing of therapeutic intervention determines functional and survival outcomes in a mouse model of late infantile batten disease

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