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Structural centrosome aberrations promote non‐cell‐autonomous invasiveness  | The EMBO Journal
Structural centrosome aberrations promote non‐cell‐autonomous invasiveness | The EMBO Journal

Epigenetic Memory Underlies Cell-Autonomous Heterogeneous Behavior of  Hematopoietic Stem Cells - ScienceDirect
Epigenetic Memory Underlies Cell-Autonomous Heterogeneous Behavior of Hematopoietic Stem Cells - ScienceDirect

Differential cell autonomous responses determine the outcome of  coxsackievirus infections in murine pancreatic α and β cells | eLife
Differential cell autonomous responses determine the outcome of coxsackievirus infections in murine pancreatic α and β cells | eLife

The Fire within: Cell-Autonomous Mechanisms in Inflammation-Driven Cancer -  ScienceDirect
The Fire within: Cell-Autonomous Mechanisms in Inflammation-Driven Cancer - ScienceDirect

A non-cell-autonomous actin redistribution enables isotropic retinal growth
A non-cell-autonomous actin redistribution enables isotropic retinal growth

Differential cell autonomous responses determine the outcome of  coxsackievirus infections in murine pancreatic α and β cells | eLife
Differential cell autonomous responses determine the outcome of coxsackievirus infections in murine pancreatic α and β cells | eLife

Cross-talk between neural stem cells and immune cells: the key to better  brain repair? | Nature Neuroscience
Cross-talk between neural stem cells and immune cells: the key to better brain repair? | Nature Neuroscience

A non-cell-autonomous actin redistribution enables isotropic retinal growth
A non-cell-autonomous actin redistribution enables isotropic retinal growth

PDF) Genetic dissection of a cell-autonomous neurodegenerative disorder:  Lessons learned from mouse models of Niemann-Pick disease type C
PDF) Genetic dissection of a cell-autonomous neurodegenerative disorder: Lessons learned from mouse models of Niemann-Pick disease type C

A non-cell-autonomous actin redistribution enables isotropic retinal growth
A non-cell-autonomous actin redistribution enables isotropic retinal growth

PDF) Genetic dissection of a cell-autonomous neurodegenerative disorder:  Lessons learned from mouse models of Niemann-Pick disease type C
PDF) Genetic dissection of a cell-autonomous neurodegenerative disorder: Lessons learned from mouse models of Niemann-Pick disease type C

Innate, adaptive, and cell-autonomous immunity against Toxoplasma gondii  infection | Experimental & Molecular Medicine
Innate, adaptive, and cell-autonomous immunity against Toxoplasma gondii infection | Experimental & Molecular Medicine

Entosis: The emerging face of non-cell-autonomous type IV programmed death  - ScienceDirect
Entosis: The emerging face of non-cell-autonomous type IV programmed death - ScienceDirect

SIRT1 Mediates Central Circadian Control in the SCN by a Mechanism that  Decays with Aging: Cell
SIRT1 Mediates Central Circadian Control in the SCN by a Mechanism that Decays with Aging: Cell

A non-cell-autonomous actin redistribution enables isotropic retinal growth
A non-cell-autonomous actin redistribution enables isotropic retinal growth

MAPK activity dynamics regulate non-cell autonomous effects of oncogene  expression | eLife
MAPK activity dynamics regulate non-cell autonomous effects of oncogene expression | eLife

Cell-autonomous and cell non-autonomous signaling through endothelin  receptor B during melanocyte development | Development
Cell-autonomous and cell non-autonomous signaling through endothelin receptor B during melanocyte development | Development

Biomolecules | Free Full-Text | The UPR in Neurodegenerative Disease: Not  Just an Inside Job | HTML
Biomolecules | Free Full-Text | The UPR in Neurodegenerative Disease: Not Just an Inside Job | HTML

Help-me signaling: Non-cell autonomous mechanisms of neuroprotection and  neurorecovery - ScienceDirect
Help-me signaling: Non-cell autonomous mechanisms of neuroprotection and neurorecovery - ScienceDirect

A cell autonomous torsinA requirement for cholinergic neuron survival and  motor control | eLife
A cell autonomous torsinA requirement for cholinergic neuron survival and motor control | eLife

Cell-Autonomous and Non–Cell-Autonomous Mechanisms of Transformation by  Amplified FGFR1 in Lung Cancer | Cancer Discovery
Cell-Autonomous and Non–Cell-Autonomous Mechanisms of Transformation by Amplified FGFR1 in Lung Cancer | Cancer Discovery

Cellular Self-Defense: How Cell-Autonomous Immunity Protects Against  Pathogens | Science
Cellular Self-Defense: How Cell-Autonomous Immunity Protects Against Pathogens | Science