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Biology subjects

Baird, M. A.

Publications and source records attributed to Baird, M. A..

3 recordsLinked to original sources

Metastatic organotropism in small cell lung cancer

Metastasis is the leading cause of cancer-related deaths, yet its regulatory mechanisms are not fully understood. Small-cell lung cancer (SCLC) is the most metastatic form of lung cancer, with most patients presenting with widespread disease, making it an ideal model for studying metastasis. However, the lack of suitable preclinical models has limited such studies. We utilized rapid autopsy-derived tumors to develop xenograft models that mimic key features of SCLC, including histopathology, rapid and widespread development of metastasis to the liver, brain, adrenal, bone marrow, and kidneys within weeks, and response to chemotherapy. By integrating in vivo lineage selection with comprehensive bulk and single cell multiomic profiling of transcriptomes and chromatin accessibility, we identified critical cellular programs driving metastatic organotropism to the liver and brain, the most common sites of SCLC metastasis. Our findings reveal the key role of nuclear-cytoskeletal interactions in SCLC liver metastasis. Specifically, the loss of the nuclear envelope protein lamin A/C, encoded by the LMNA gene, increased nuclear deformability and significantly increased the incidence of liver metastasis. Human liver metastases exhibited reduced LMNA expression compared to other metastatic sites, correlating with poorer patient outcomes and increased mortality. This study introduces novel preclinical models for SCLC metastasis and highlights pathways critical for organ-specific metastasis, offering new avenues for the development of targeted therapies to prevent or treat metastatic disease.

cancer biology↗

Lamin B Receptor Upregulation in Metastatic Melanoma Causes Cholesterol-Mediated Nuclear Envelope Fragility

Metastatic cancer cells migrate through regions of tissue confinement, causing nuclear envelope (NE) rupture and heritable DNA damage. We discovered that cells from multiple cancers have increased NE fragility in confinement and transcriptional upregulation of nuclear genes compared to benign counterparts. A bioinformatic-driven siRNA screen revealed that lamin B receptor (LBR) upregulation correlates with melanoma progression and NE fragility. Increased LBR cholesterol synthase activity causes accumulation of cholesterol in the NE, which is necessary and sufficient for nuclear deformability and NE rupture in cells confined in vitro and is associated with NE rupture in invasive cells migrating out of tumor organoids and tumors in vivo. Thus, LBR upregulation causes excess NE cholesterol, driving nuclear fragility in confined migrating melanoma cells, establishing a direct role for nuclear membrane lipid composition in metastatic cancers.

cell biology↗

Intrinsic regulators of the action potential waveform control dopamine release to shape behavior

Despite the widely known role of dopamine in reinforcement learning, how the patterns of dopamine release that are critical to the acquisition, performance, and extinction of conditioned responses are generated is poorly resolved. Here, we demonstrate that the coordinated actions of two ion channels, Kv4.3 and BKCa1.1, control the pattern of dopamine neuron firing and dopamine release on different time scales to regulate separate phases of reinforced behavior in mice. Inactivation of Kv4.3 in VTA dopamine neurons increases ex vivo pacemaker activity and excitability that is associated with increased in vivo ramping dynamics prior to lever press in a learned instrumental response paradigm. Loss of Kv4.3 enhances performance of the learned response and facilitates extinction. In contrast, loss of BKCa1.1 increases burst firing and phasic dopamine release that enhances learning of an instrumental response. Inactivation of BKCa1.1 enhances extinction burst lever pressing in early extinction training that is associated with increased reward prediction error signals. These data demonstrate that temporally distinct patterns of dopamine release are governed by the intrinsic regulators of the cell to shape behavior. TeaserWe show that ion channels in midbrain dopamine neurons are critical for patterning action potential firing at the cell body and governing neurotransmitter release to regulate reinforcement learning.

neuroscience↗