Blood and immune development in human fetal bone marrow and Down syndrome

Sep 29, 2021·
L. jardine
,
S. webb
,
I. goh
,
M. q. londono
,
G. reynolds
,
M. mather
,
B. olabi
,
E. stephenson
,
R. a. botting
,
D. horsfall
,
J. engelbert
,
D. maunder
,
N. mende
,
C. murnane
,
E. dann
,
J. mcgrath
,
H. king
,
I. kucinski
,
R. queen
,
C. d. carey
,
C. shrubsole
,
E. poyner
,
M. acres
,
C. jones
,
T. ness
,
R. coulthard
,
N. elliott
,
S. obyrne
,
M. l. r. haltalli
,
J. e. lawrence
,
S. lisgo
,
P. balogh
,
K. b. meyer
,
E. prigmore
,
K. ambridge
,
M. s. jain
,
M. efremova
,
K. pickard
,
T. creasey
,
J. bacardit
,
D. henderson
,
J. coxhead
,
A. filby
,
R. hussain
,
D. dixon
,
D. mcdonald
,
D. m. popescu
,
M. s. kowalczyk
Dr. Bo Li
Dr. Bo Li
,
O. ashenberg
,
M. tabaka
,
D. dionne
,
T. l. tickle
,
M. slyper
,
O. rozenblatt rosen
,
A. regev
,
S. behjati
,
E. laurenti
,
N. k. wilson
,
A. roy
,
B. gottgens
,
I. roberts
,
S. a. teichmann
,
M. haniffa
· 0 min read
Abstract
Haematopoiesis in the bone marrow (BM) maintains blood and immune cell production throughout postnatal life. Haematopoiesis first emerges in human BM at 11–12 weeks after conception, yet almost nothing is known about how fetal BM (FBM) evolves to meet the highly specialized needs of the fetus and newborn. Here we detail the development of FBM, including stroma, using multi-omic assessment of mRNA and multiplexed protein epitope expression. We find that the full blood and immune cell repertoire is established in FBM in a short time window of 6–7 weeks early in the second trimester. FBM promotes rapid and extensive diversification of myeloid cells, with granulocytes, eosinophils and dendritic cell subsets emerging for the first time. The substantial expansion of B lymphocytes in FBM contrasts with fetal liver at the same gestational age. Haematopoietic progenitors from fetal liver, FBM and cord blood exhibit transcriptional and functional differences that contribute to tissue-specific identity and cellular diversification. Endothelial cell types form distinct vascular structures that we show are regionally compartmentalized within FBM. Finally, we reveal selective disruption of B lymphocyte, erythroid and myeloid development owing to a cell-intrinsic differentiation bias as well as extrinsic regulation through an altered microenvironment in Down syndrome (trisomy 21).
Type
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Nature
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Dr. Bo Li
Authors
Principal Scientist II
Dr. Bo Li is a Principal Scientist II at AI for Biology and Translation (AIBT), Genentech, Inc. His research focuses on three major topics: Science, Technology and Computational Methods. For Science, his team works on lung cancer and especially small cell lung cancer. For Technology, his team evaluates and adopts cutting-edge high-throughput data generation technologies, such as Cellanome and SBX sequencing. For Computational Methods, his team develops novel computational and deep learning tools for enabling insight discovery from high-throughput multi-modal data. Before joining in Genentech, he was an Assistant Professor of Medicine at Harvard Medical School and the director of Bioinformatics and Computational Biology at Center for Immunology and Inflammatory Diseases, Massachusetts General Hospital. He received his Ph.D. in computer science from UW-Madison and completed two postdoctoral trainings with Dr. Lior Pachter at UC Berkeley and Dr. Aviv Regev at Broad Institute. He is best known for developing RSEM, an impactful RNA-seq transcript quantification software. RSEM is cited 22,602 times (Google Scholar) and adopted by several big consortia such as TCGA, ENCODE, GTEx and TOPMed.
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