TY - JOUR
T1 - Autophagy limits proliferation and glycolytic metabolism in acute myeloid leukemia
AU - Watson, As
AU - Riffelmacher, T.
AU - Stranks, A.
AU - Williams, O.
AU - De Boer, J.
AU - Cain, K.
AU - MacFarlane, M.
AU - McGouran, J.
AU - Kessler, B.
AU - Khandwala, S.
AU - Chowdhury, O.
AU - Puleston, D.
AU - Phadwal, K.
AU - Mortensen, M.
AU - Ferguson, D.
AU - Soilleux, E.
AU - Woll, P.
AU - Jacobsen, Sew
AU - Simon, Ak
N1 - Funding Information:
We thank the Biomedical Research Center (BRC), National Institutes of Health Research (NIHR) for funding the salary of AKS, the BBSRC and the Wellcome Trust as well as NSERC and the Lady Tata Memorial Trust for contributions toward consumables and ASW’s student fees and stipends. We acknowledge N Mizushima, M Komatsu and D Kioussis for mice, C Münz for distribution of mice and LC3 antibody, K Alford and H Ferry for FACS sorting, L Stenson for aid with the cytospins. L Jostins helped with statistical analysis of chromosomal regions. P Vyas provided patient samples from MDSbio, an NCRN-approved sample collection study that is in part funded through MRC Molecular Haematology Unit and MRC Disease Team Award and part funded through the BRC, NIHR.
Publisher Copyright:
© 2015, The Author(s).
PY - 2015/12/21
Y1 - 2015/12/21
N2 - Decreased autophagy contributes to malignancies; however, it is unclear how autophagy has an impact on tumor growth. Acute myeloid leukemia (AML) is an ideal model to address this as (i) patient samples are easily accessible, (ii) the hematopoietic stem and progenitor cells (HSPC) where transformation occurs is well characterized and (iii) loss of the key autophagy gene Atg7 in HSPCs leads to a lethal pre-leukemic phenotype in mice. Here we demonstrate that loss of Atg5 results in an identical HSPC phenotype as loss of Atg7, confirming a general role for autophagy in HSPC regulation. Compared with more committed/mature hematopoietic cells, healthy human and mouse HSPCs displayed enhanced basal autophagic flux, limiting mitochondrial damage and reactive oxygen species in this long-lived population. Taken together, with our previous findings these data are compatible with autophagy-limiting leukemic transformation. In line with this, autophagy gene losses are found within chromosomal regions that are commonly deleted in human AML. Moreover, human AML blasts showed reduced expression of autophagy genes and displayed decreased autophagic flux with accumulation of unhealthy mitochondria, indicating that deficient autophagy may be beneficial to human AML. Crucially, heterozygous loss of autophagy in an MLL–ENL model of AML led to increased proliferation in vitro, a glycolytic shift and more aggressive leukemias in vivo. With autophagy gene losses also identified in multiple other malignancies, these findings point to low autophagy, providing a general advantage for tumor growth.
AB - Decreased autophagy contributes to malignancies; however, it is unclear how autophagy has an impact on tumor growth. Acute myeloid leukemia (AML) is an ideal model to address this as (i) patient samples are easily accessible, (ii) the hematopoietic stem and progenitor cells (HSPC) where transformation occurs is well characterized and (iii) loss of the key autophagy gene Atg7 in HSPCs leads to a lethal pre-leukemic phenotype in mice. Here we demonstrate that loss of Atg5 results in an identical HSPC phenotype as loss of Atg7, confirming a general role for autophagy in HSPC regulation. Compared with more committed/mature hematopoietic cells, healthy human and mouse HSPCs displayed enhanced basal autophagic flux, limiting mitochondrial damage and reactive oxygen species in this long-lived population. Taken together, with our previous findings these data are compatible with autophagy-limiting leukemic transformation. In line with this, autophagy gene losses are found within chromosomal regions that are commonly deleted in human AML. Moreover, human AML blasts showed reduced expression of autophagy genes and displayed decreased autophagic flux with accumulation of unhealthy mitochondria, indicating that deficient autophagy may be beneficial to human AML. Crucially, heterozygous loss of autophagy in an MLL–ENL model of AML led to increased proliferation in vitro, a glycolytic shift and more aggressive leukemias in vivo. With autophagy gene losses also identified in multiple other malignancies, these findings point to low autophagy, providing a general advantage for tumor growth.
UR - https://www.scopus.com/pages/publications/85076917710
U2 - 10.1038/cddiscovery.2015.8
DO - 10.1038/cddiscovery.2015.8
M3 - Article
AN - SCOPUS:85076917710
SN - 2058-7716
VL - 1
JO - Cell Death Discovery
JF - Cell Death Discovery
IS - 1
M1 - 15008
ER -