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Updated: Jan 5, 2026

Assessing Autophagic Flux by Measuring LC3, p62, and LAMP1 Co-localization Using Multispectral Imaging Flow Cytometry
Published on: July 21, 2017
Chaperone-Mediated Autophagy and Its Emerging Role in Hematological Malignancies
Guillaume Robert1, Arnaud Jacquel2, Patrick Auberger3
1Mediterranean Center for Molecular Medicine ,Université Nice Côte d'Azur, C3M/Inserm1065, 06100 Nice, France. robertg@unice.fr.
Abstract:
Chaperone-mediated autophagy (CMA) ensures the selective degradation of cellular proteins endowed with a KFERQ-like motif by lysosomes. It is estimated that 30% of all cellular proteins can be directed to the lysosome for CMA degradation, but only a few substrates have been formally identified so far. Mechanistically, the KFERQ-like motifs present in substrate proteins are recognized by the molecular chaperone Hsc70c (Heat shock cognate 71 kDa protein cytosolic), also known as HSPA8, and directed to LAMP2A, which acts as the CMA receptor at the lysosomal surface. Following linearization, the protein substrate is next transported to the lumen of the lysosomes, where it is degraded by resident proteases, mainly cathepsins and eventually recycled to sustain cellular homeostasis. CMA is induced by different stress conditions, including energy deprivation that also activates macro-autophagy (MA), that may make it difficult to decipher the relative impact of both pathways on cellular homeostasis. Besides common inducing triggers, CMA and MA might be induced as compensatory mechanisms when either mechanism is altered, as it is the often the case in different pathological settings. Therefore, CMA activation can compensate for alterations of MA and vice versa. In this context, these compensatory mechanisms, when occurring, may be targeted for therapeutic purposes. Both processes have received particular attention from scientists and clinicians, since modulation of MA and CMA may have a profound impact on cellular proteostasis, metabolism, death, differentiation, and survival and, as such, could be targeted for therapeutic intervention in degenerative and immune diseases, as well as in cancer, including hematopoietic malignancies. The role of MA in cancer initiation and progression is now well established, but whether and how CMA is involved in tumorigenesis has been only sparsely explored. In the present review, we encompass the description of the mechanisms involved in CMA, its function in the physiology and pathogenesis of hematopoietic cells, its emerging role in cancer initiation and development, and, finally, the potential therapeutic opportunity to target CMA or CMA-mediated compensatory mechanisms in hematological malignancies.
Insights
Chaperone-mediated autophagy (CMA) degrades cellular proteins via lysosomes. This review explores CMA
Area of Science:
- Cellular Biology
- Molecular Mechanisms
- Autophagy
Background:
- Chaperone-mediated autophagy (CMA) selectively degrades proteins with KFERQ-like motifs via lysosomes.
- Hsc70c and LAMP2A are key components in substrate recognition and lysosomal targeting.
- CMA plays a role in cellular homeostasis and can be induced by stress, sometimes compensating for macro-autophagy (MA).
Purpose of the Study:
- To review the mechanisms of CMA.
- To discuss CMA's role in hematopoietic cell physiology and pathology.
- To explore CMA's emerging role in cancer and its therapeutic potential.
Main Methods:
- Literature review of CMA mechanisms, functions, and implications in hematological malignancies.
- Analysis of CMA's interplay with macro-autophagy (MA).
- Discussion of therapeutic strategies targeting CMA.
Main Results:
- CMA is a selective protein degradation pathway crucial for cellular proteostasis.
- CMA and MA can act as compensatory mechanisms in pathological conditions.
- Evidence suggests CMA's involvement in tumorigenesis, particularly in hematological cancers.
Conclusions:
- CMA is a vital pathway for cellular protein turnover and homeostasis.
- Targeting CMA or its compensatory roles offers potential therapeutic avenues for hematological malignancies.
- Further research is needed to fully elucidate CMA's role in cancer development.
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