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1. An improved, high yield method for isolating nuclei from individual zebrafish embryos for single-nucleus RNA sequencing

2. Multiplex profiling of developmental cis-regulatory elements with quantitative single-cell expression reporters

3. Single-cell analysis of chromatin and expression reveals age- and sex-associated alterations in the human heart

4. Single-cell, whole-embryo phenotyping of mammalian developmental disorders

5. Predicting cellular responses to complex perturbations in high‐throughput screens

6. A single-cell time-lapse of mouse prenatal development from gastrula to birth

7. Single cell, whole embryo phenotyping of pleiotropic disorders of mammalian development

9. The continuum of Drosophila embryonic development at single-cell resolution.

10. An optimized protocol for single cell transcriptional profiling by combinatorial indexing

12. Systematic reconstruction of cellular trajectories across mouse embryogenesis.

16. The human body at cellular resolution: the NIH Human Biomolecular Atlas Program

17. A Genome-wide Framework for Mapping Gene Regulation via Cellular Genetic Screens

30. iPSC-Derived Macrophages Effectively Treat Pulmonary Alveolar Proteinosis in Csf2rb-Deficient Mice

32. A Single-Cell Atlas of In Vivo Mammalian Chromatin Accessibility

34. A CLK3-HMGA2 Alternative Splicing Axis Impacts Human Hematopoietic Stem Cell Molecular Identity throughout Development

35. TopHat2: accurate alignment of transcriptomes in the presence of insertions, deletions and gene fusions

37. Two new complete genome sequences offer insight into host and tissue specificity of plant pathogenic Xanthomonas spp.

38. Multiplexed RNA structure characterization with selective 2′-hydroxyl acylation analyzed by primer extension sequencing (SHAPE-Seq)

39. Modeling and automation of sequencing-based characterization of RNA structure

40. Improving RNA-Seq expression estimates by correcting for fragment bias

43. Genome sequence and rapid evolution of the rice pathogen Xanthomonas oryzae pv. oryzae PXO99A.

47. LIN28 Regulates Stem Cell Metabolism and Conversion to Primed Pluripotency

49. Integrative Analyses of Human Reprogramming Reveal Dynamic Nature of Induced Pluripotency

50. Transcriptional Activation of Regenerative Hematopoiesis via Vascular Niche Sensing

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