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Mendoza-Castrejon, J.

Publications and source records attributed to Mendoza-Castrejon, J..

2 recordsLinked to original sources

SKIDA1 transiently sustains MLL::ENL-Expressing hematopoietic progenitors during neonatal stages and promotes B-lineage priming

Infant leukemias arise as B-cell acute lymphocytic (B-ALL) or acute myeloid leukemia (AML). The majority are driven by chromosomal rearrangements of the MLL/ KMT2A gene (MLLr) and arise in utero, implying a fetal cell of origin. Fetal and neonatal hematopoietic progenitors have unique transcriptomes and epigenomes, raising the question of whether MLL fusion proteins activate distinct target gene profiles during these early stages of life. Here, we use a transgenic mouse model of MLL::ENL-driven leukemia to identify Skida1 as a target gene that is more highly induced in fetal and neonatal progenitors than in adult progenitors. SKIDA1 is highly expressed in human MLLr leukemias and the protein associates with the Polycomb Repressive Complex 2 (PRC2). We show that Skida1 is dispensable for normal hematopoiesis, but it promotes B-cell priming and maintains MLL::ENL-expressing hematopoietic stem cells (HSCs) and multipotent progenitor cells (MPPs) during neonatal development. Conditional deletion of Skida1 has no effect on normal HSC function, yet it impairs B-cell production from neonatal MLL::ENL-expressing HSCs while leaving myeloid leukemogenesis unaffected. Temporally-restricted targets of MLL fusion proteins, such as SKIDA1, can therefore tune cell fates at different ages, potentially influencing the types MLLr leukemias that arise at different ages.

cancer biology↗

Fetal context conveys heritable protection against MLL-rearranged leukemia that depends on MLL3

MLL rearrangements (MLLr) are the most common cause of congenital and infant leukemias. MLLr arise prior to birth and require few cooperating mutations for transformation, yet congenital leukemias are 10-fold less common than infant leukemias and >100-fold less common than childhood leukemias overall. This raises the question of whether mechanisms exist to suppress leukemic transformation during fetal life, thereby protecting the developing fetus from malignancy during a period of rapid hematopoietic progenitor expansion. Here, we use mouse models to show that fetal MLL::ENL exposure creates a heritable, leukemia-resistant state. MLL::ENL imposes a negative selective pressure on fetal hematopoietic progenitors. It leads to postnatal loss of self-renewal gene expression and enhanced myeloid differentiation that precludes transformation. These changes do not occur when MLL::ENL is induced shortly after birth, and transformation proceeds efficiently in this context. The fetal barrier to transformation is enforced by the histone methyltransferase MLL3. It can be overcome by cooperating mutations, such as NrasG12D, or through somatic or germline inactivation of MLL3. Heritable fetal protection against leukemic transformation may explain the low incidence of congenital leukemias in humans despite prenatal MLL rearrangement.

cancer biology↗