TY - JOUR
T1 - Inflammatory exposure drives long-lived impairment of hematopoietic stem cell self-renewal activity and accelerated aging
AU - Bogeska, Ruzhica
AU - Mikecin, Ana Matea
AU - Kaschutnig, Paul
AU - Fawaz, Malak
AU - Büchler-Schäff, Marleen
AU - Le, Duy
AU - Ganuza, Miguel
AU - Vollmer, Angelika
AU - Paffenholz, Stella V.
AU - Asada, Noboru
AU - Rodriguez-Correa, Esther
AU - Frauhammer, Felix
AU - Buettner, Florian
AU - Ball, Melanie
AU - Knoch, Julia
AU - Stäble, Sina
AU - Walter, Dagmar
AU - Petri, Amelie
AU - Carreño-Gonzalez, Martha J.
AU - Wagner, Vinona
AU - Brors, Benedikt
AU - Haas, Simon
AU - Lipka, Daniel B.
AU - Essers, Marieke A.G.
AU - Weru, Vivienn
AU - Holland-Letz, Tim
AU - Mallm, Jan Philipp
AU - Rippe, Karsten
AU - Krämer, Stephan
AU - Schlesner, Matthias
AU - McKinney Freeman, Shannon
AU - Florian, Maria Carolina
AU - King, Katherine Y.
AU - Frenette, Paul S.
AU - Rieger, Michael A.
AU - Milsom, Michael D.
N1 - Publisher Copyright:
© 2022 Elsevier Inc.
PY - 2022/8/4
Y1 - 2022/8/4
N2 - Hematopoietic stem cells (HSCs) mediate regeneration of the hematopoietic system following injury, such as following infection or inflammation. These challenges impair HSC function, but whether this functional impairment extends beyond the duration of inflammatory exposure is unknown. Unexpectedly, we observed an irreversible depletion of functional HSCs following challenge with inflammation or bacterial infection, with no evidence of any recovery up to 1 year afterward. HSCs from challenged mice demonstrated multiple cellular and molecular features of accelerated aging and developed clinically relevant blood and bone marrow phenotypes not normally observed in aged laboratory mice but commonly seen in elderly humans. In vivo HSC self-renewal divisions were absent or extremely rare during both challenge and recovery periods. The progressive, irreversible attrition of HSC function demonstrates that temporally discrete inflammatory events elicit a cumulative inhibitory effect on HSCs. This work positions early/mid-life inflammation as a mediator of lifelong defects in tissue maintenance and regeneration.
AB - Hematopoietic stem cells (HSCs) mediate regeneration of the hematopoietic system following injury, such as following infection or inflammation. These challenges impair HSC function, but whether this functional impairment extends beyond the duration of inflammatory exposure is unknown. Unexpectedly, we observed an irreversible depletion of functional HSCs following challenge with inflammation or bacterial infection, with no evidence of any recovery up to 1 year afterward. HSCs from challenged mice demonstrated multiple cellular and molecular features of accelerated aging and developed clinically relevant blood and bone marrow phenotypes not normally observed in aged laboratory mice but commonly seen in elderly humans. In vivo HSC self-renewal divisions were absent or extremely rare during both challenge and recovery periods. The progressive, irreversible attrition of HSC function demonstrates that temporally discrete inflammatory events elicit a cumulative inhibitory effect on HSCs. This work positions early/mid-life inflammation as a mediator of lifelong defects in tissue maintenance and regeneration.
KW - HSCs
KW - accelerated aging
KW - aging
KW - clonal hematopoiesis
KW - hematopoietic stem cells
KW - inflammaging
KW - inflammation
KW - self-renewal
KW - stem cell exhaustion
KW - stress hematopoiesis
UR - https://www.scopus.com/pages/publications/85135390419
U2 - 10.1016/j.stem.2022.06.012
DO - 10.1016/j.stem.2022.06.012
M3 - Article
C2 - 35858618
AN - SCOPUS:85135390419
SN - 1934-5909
VL - 29
SP - 1273-1284.e8
JO - Cell Stem Cell
JF - Cell Stem Cell
IS - 8
ER -