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Biology subjects

Miller, Z. D.

Publications and source records attributed to Miller, Z. D..

4 recordsLinked to original sources

A multi-agent system for spine MRI report generation from multi-sequence imaging

Spinal pathology is a leading cause of pain and disability worldwide. Spine magnetic resonance imaging (MRI) is central to clinical evaluation, yet its interpretation remains complex and time-consuming, requiring integration of information across multiple imaging sequences and anatomical regions. Despite recent advances in automated MRI analysis, effectively combining multi-sequence data while preserving sequence-specific diagnostic information remains an open challenge. Here we present SpineAgent, a multi-agent framework for spine MRI report generation built upon a multi-sequence foundation model trained on routine clinical data from 32,047 patients and 453,683 MRI series, comprising a total of 13,441,191 MRI slices. To accommodate diverse modalities of sequences, we first pre-train two DINOv3-based encoders separately on T1- and T2-weighted sequences. We then introduce a continual training strategy that learns a synthesizer to embed images of other sequences using the T1 and T2 encoders, producing patient-level embedding that integrates various signals across MRI sequences. Using these embeddings, SpineAgent achieves state-of-the-art performance, with mean 10.8% AUROC improvement across 17 spinal condition-prediction tasks compared to the best competing method, and demonstrates strong generalizability under cross-manufacturer and cross-cohort evaluation. Beyond classification, SpineAgent enables pathology localization by identifying findings-relevant slices and segmenting pathological regions. It also supports multimodal image-report retrieval, providing a solid foundation for scalable and explainable MRI report generation. We further integrate these validated capabilities of SpineAgent into 37 specialized agents for condition diagnosis, pathological-region localization, and clinically-similar-cases retrieval. Finally, we incorporate their outputs as structured tokens within a Medical Report Agent trained end-to-end for report generation. Through both automated metrics and expert evaluation by five radiologists, SpineAgent achieves leading performance in spine MRI report generation. Together, SpineAgent introduces a continual training approach for multi-sequence spine MRI understanding. By decomposing report generation into clinically grounded subtasks addressed by specialized agents, the SpineAgent framework enables accurate, interpretable and generalizable spine MRI reporting across diverse imaging sequences and anatomical regions.

bioinformatics↗

Genome-Wide CRISPRi Screening Identifies XPO5 as a Regulator of B Cell Mutation and Fitness

The B cell receptor (BCR) is the defining factor of B lymphocyte identity and function, allowing for a robust adaptive immune response through antigen recognition. Strict regulation of BCR surface density dictates proper B cell signaling, immune regulation, and the prevention of malignancy, yet the factors regulating this density remain undefined. Here, we performed a genome-wide CRISPR interference (CRISPRi) screen in Ramos B cells, which undergo constitutive somatic hypermutation (SHM) and identified Exportin-5 (XPO5) as a central regulator of BCR surface expression. XPO5 depleted cells exhibited an accelerated loss of surface BCR with no change in transcript levels, suggesting a potential post-transcriptional regulatory mechanism. Further analysis revealed XPO5 depletion led to an accumulation of non-functional BCR light chain sequences driven by an increase in AID signature mutations, implicating XPO5 in balancing mutagenesis and repair during somatic hypermutation (SHM). Transcriptomic and small RNA sequencing revealed a global reduction in miRNA levels and enrichment of target gene sets indicative of cell cycle arrest and increased DNA damage response. These data suggest that XPO5 plays a multi-faceted regulatory role in B cells via a miRNA-mediated control, supporting both proliferation and regulating DNA repair thresholds to maintain B cell receptor expression and functionality. SignificancePrecise regulation of B cell receptor (BCR) density is essential for immune function and preventing malignancy. Through a genome-wide CRISPR interference (CRISPRi) screen, we identified Exportin-5 (XPO5) as a critical regulator of BCR surface expression. We show that XPO5 is essential to maintain the miRNA landscape that supports DNA repair during somatic hypermutation. Loss of XPO5 destabilizes this mutational balance, driving the accumulation of non-functional BCR sequences. This study uncovers a novel connection between miRNA nuclear export and the preservation of B cell identity and genomic fidelity, highlighting the multi-faceted regulatory role of XPO5.

cell biology↗

PABPC1 Modulates Immunoglobulin pre-mRNA Alternative Polyadenylation

Alternative polyadenylation is a mechanism by which cells tune gene expression, and dysregulation can lead to development of disease. PABPC1 has been implicated in poly(A) site selection, but its function in gene regulation remains contradictory and poorly defined. Here, we investigate its role in B cell development, where APA controls immunoglobulin secretion. To define this role, we mapped PABPC1-RNA interactions using CLAP-seq and perturbed PABPC1 expression using a degron based strategy. PABPC1 localizes to the 3UTR in 70% of its gene targets and primarily binds to A-rich regions. Integration with transcriptomic data suggests PABPC1 downregulates 60% of its gene targets. While transcriptome-wide shifts in 3 UTR length were limited, PABPC1 binding was specifically enriched in genes exhibiting significant 3 UTR shortening. Using a foundational genomics model, we find the PAS-proximal region is the most predictive of gene expression within PABPC1 binding sites. Positional analysis revealed PABPC1 localizes closer to the PAS in genes downregulated following depletion. In immunoglobulin transcripts, PABPC1 binds to both secreted and membrane isoforms and is more enriched at the secretory PAS, and depletion modestly alters immunoglobulin expression. Together, our findings demonstrate PABPC1 primarily shortens and downregulates its targets in a context dependent manner. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=80 SRC="FIGDIR/small/720383v1_ufig1.gif" ALT="Figure 1"> View larger version (26K): org.highwire.dtl.DTLVardef@1a93633org.highwire.dtl.DTLVardef@257f55org.highwire.dtl.DTLVardef@1cad5bcorg.highwire.dtl.DTLVardef@19662fa_HPS_FORMAT_FIGEXP M_FIG C_FIG

molecular biology↗

Proximity proteomics reveals a role for IFI16 during human coronavirus infection

Viruses rely on the infected host cell to ensure successful replication and propagation of infection. This is achieved through interactions between virus-encoded proteins and proteins expressed in infected cells. All human coronaviruses (HCoVs) encode 16 non-structural proteins (NSPs) which exhibit some level of similarity in identity and function among the HCoVs. To identify host proteins that are potential interacting partners of HCoV NSPs, we utilized split-TurboID along with mass spectrometry and identified IFN-{gamma}-inducible protein-16 (IFI16) as a proximal partner of SARS-CoV-2 NSP8 and NSP10. To investigate the significance of the association between the NSP8/NSP10 complex and IFI16, we utilized CRISPR-Cas9 to knockout and CRISPRi to knockdown IFI16 in A549 cells and demonstrated that loss or reduced expression of IFI16 leads to a decrease in human coronavirus infection. We further demonstrated that there is reduced viral RNA replication and viral protein synthesis upon loss of IFI16. Interestingly, the loss of IFI16 results in reduced expression of type I IFNs. Taken together, these data suggests that IFI16 promotes human coronavirus infection, and the role IFI16 plays in coronavirus replication is independent of its role as a regulator of type I IFN gene expression.

microbiology↗