Literature DB >> 25640960

Mitochondrial dependency in progression of acute myeloid leukemia.

Nandini Pal Basak1, Subrata Banerjee2.   

Abstract

Acute myeloid leukemia (AML) is a clonal hematopoietic malignant disorder which arises due to dysregulated differentiation, uncontrolled growth and inhibition of apoptosis leading to the accumulation of immature myeloid progenitor in the bone marrow. The heterogeneity of the disease at the molecular and cytogenetic level has led to the identification of several alteration of biological and clinical significance. One of the alterations which have gained attention in recent times is the altered energy and metabolic dependency of cancer originally proposed by Warburg. Mitochondria are important cell organelles regulating cellular energetic level, metabolism and apoptosis which in turn can affect cell proliferation and differentiation, the major manifestations of diseases like AML. In recent times the importance of mitochondrial generated ATP and mitochondrial localized metabolic pathways has been shown to play important role in the progression of AML. These studies have also demonstrated the clinical significance of mitochondrial targets for its effectiveness in combating relapsed or refractory AML. Here we review the importance of the mitochondrial dependency for the progression of AML and the emergence of the mitochondrial molecular targets which holds therapeutic importance.
Copyright © 2015 © Elsevier B.V. and Mitochondria Research Society. Published by Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Acute myeloid leukemia; Altered metabolism; Cellular stress; Drug targets; Mitochondria; Oxidative phosphorylation

Mesh:

Substances:

Year:  2015        PMID: 25640960     DOI: 10.1016/j.mito.2015.01.006

Source DB:  PubMed          Journal:  Mitochondrion        ISSN: 1567-7249            Impact factor:   4.160


  32 in total

1.  Fatty Acid Oxidation-Driven Src Links Mitochondrial Energy Reprogramming and Oncogenic Properties in Triple-Negative Breast Cancer.

Authors:  Jun Hyoung Park; Sajna Vithayathil; Santosh Kumar; Pi-Lin Sung; Lacey Elizabeth Dobrolecki; Vasanta Putluri; Vadiraja B Bhat; Salil Kumar Bhowmik; Vineet Gupta; Kavisha Arora; Danli Wu; Efrosini Tsouko; Yiqun Zhang; Suman Maity; Taraka R Donti; Brett H Graham; Daniel E Frigo; Cristian Coarfa; Patricia Yotnda; Nagireddy Putluri; Arun Sreekumar; Michael T Lewis; Chad J Creighton; Lee-Jun C Wong; Benny Abraham Kaipparettu
Journal:  Cell Rep       Date:  2016-02-25       Impact factor: 9.423

Review 2.  Targeting multiple signaling pathways: the new approach to acute myeloid leukemia therapy.

Authors:  Jenna L Carter; Katie Hege; Jay Yang; Hasini A Kalpage; Yongwei Su; Holly Edwards; Maik Hüttemann; Jeffrey W Taub; Yubin Ge
Journal:  Signal Transduct Target Ther       Date:  2020-12-18

3.  Chemotherapy-Resistant Human Acute Myeloid Leukemia Cells Are Not Enriched for Leukemic Stem Cells but Require Oxidative Metabolism.

Authors:  Thomas Farge; Estelle Saland; Fabienne de Toni; Nesrine Aroua; Mohsen Hosseini; Robin Perry; Claudie Bosc; Mayumi Sugita; Lucille Stuani; Marine Fraisse; Sarah Scotland; Clément Larrue; Héléna Boutzen; Virginie Féliu; Marie-Laure Nicolau-Travers; Stéphanie Cassant-Sourdy; Nicolas Broin; Marion David; Nizar Serhan; Audrey Sarry; Suzanne Tavitian; Tony Kaoma; Laurent Vallar; Jason Iacovoni; Laetitia K Linares; Camille Montersino; Rémy Castellano; Emmanuel Griessinger; Yves Collette; Olivier Duchamp; Yara Barreira; Pierre Hirsch; Tony Palama; Lara Gales; François Delhommeau; Barbara H Garmy-Susini; Jean-Charles Portais; François Vergez; Mary Selak; Gwenn Danet-Desnoyers; Martin Carroll; Christian Récher; Jean-Emmanuel Sarry
Journal:  Cancer Discov       Date:  2017-04-17       Impact factor: 39.397

4.  Circ_0035381 Regulates Acute Myeloid Leukemia Development by Modulating YWHAZ Expression via Adsorbing miR-582-3p.

Authors:  Feng Xue; Min Li; Yun Liu; Chunxin Xu; Haigang Li; Huilian Liu
Journal:  Biochem Genet       Date:  2022-08-02       Impact factor: 2.220

5.  Novel mitochondria-targeting compounds selectively kill human leukemia cells.

Authors:  Svetlana B Panina; Jingqi Pei; Natalia Baran; Elissa Tjahjono; Shraddha Patel; Gheath Alatrash; Sergej Konoplev; Leonid A Stolbov; Vladimir V Poroikov; Marina Konopleva; Natalia V Kirienko
Journal:  Leukemia       Date:  2022-06-07       Impact factor: 12.883

Review 6.  Targeting mitochondrial respiration for the treatment of acute myeloid leukemia.

Authors:  Jenna L Carter; Katie Hege; Hasini A Kalpage; Holly Edwards; Maik Hüttemann; Jeffrey W Taub; Yubin Ge
Journal:  Biochem Pharmacol       Date:  2020-10-02       Impact factor: 5.858

Review 7.  Mitochondria as a Novel Target for Cancer Chemoprevention: Emergence of Mitochondrial-targeting Agents.

Authors:  Mofei Huang; Charles R Myers; Yian Wang; Ming You
Journal:  Cancer Prev Res (Phila)       Date:  2020-12-10

8.  Feature genes predicting the FLT3/ITD mutation in acute myeloid leukemia.

Authors:  Chenglong Li; Biao Zhu; Jiao Chen; Xiaobing Huang
Journal:  Mol Med Rep       Date:  2016-05-12       Impact factor: 2.952

Review 9.  The role of autophagy in targeted therapy for acute myeloid leukemia.

Authors:  Wenxin Du; Aixiao Xu; Yunpeng Huang; Ji Cao; Hong Zhu; Bo Yang; Xuejing Shao; Qiaojun He; Meidan Ying
Journal:  Autophagy       Date:  2020-09-22       Impact factor: 16.016

Review 10.  Far from Health: The Bone Marrow Microenvironment in AML, A Leukemia Supportive Shelter.

Authors:  Stephanie Sendker; Katharina Waack; Dirk Reinhardt
Journal:  Children (Basel)       Date:  2021-05-08
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