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Biology subjects

Farmer, S. M.

Publications and source records attributed to Farmer, S. M..

4 recordsLinked to original sources

A genetic tool targeting brain GPR75

G-protein-coupled receptor 75 (GPR75) has emerged as an important mediator in diet-induced obesity (DIO) and a promising therapeutic target for anti-obesity drugs. However, the anatomical location of GPR75 in the brain remains unclear, hindering the understanding of GPR75 biology in DIO. Here, we generated a new GPR75-GFP-Ires-Cre knockin mouse strain, in which the Cre expression is driven by the endogenous GPR75 promoter and the GFP is fused with the C-terminal of the GPR75 protein. Both Cre and GFP were confirmed to be colocalized with the endogenous GPR75 expression. In addition, the GPR75-GFP fusion protein remains functionally normal with unaltered susceptibility to DIO. Moreover, using this mouse strain, we found that GPR75 is broadly expressed throughout the brain and mainly localized to the cytoplasm of brain neurons. This new genetic tool can therefore be used to study the neural basis for GPR75 in mediating DIO.

neuroscience↗

Functional Characterization of Hsp110 in Drosophila Reveals its Essential and Dosage-Sensitive Role in Nervous System Integrity

The Hsp70 molecular chaperone system is the front line of defense in maintaining cellular proteostasis. In eukaryotes, ATP/ADP nucleotide exchange in the Hsp70 chaperone cycle is stimulated by Hsp110, a divergent member of the Hsp70 chaperone superfamily and co-chaperone of Hsp70. Hsp110 is also a known modifier of neurodegenerative and other protein misfolding-related disorders. Biochemical aspects of Hsp110 chaperone functions have been characterized in vitro, and pathway interactions have been extensively characterized genetically in yeast model systems; however, a detailed understanding of its physiological roles in metazoans, particularly in the nervous system has not been carried out. Taking advantage of the single Hsp110-encoding gene in the Drosophila genome, we conducted a comprehensive investigation of its expression and function in this animal model. Notably, Drosophila and human Hsp110 share significant similarity in their sequence, structure, and splicing variants. At the protein level, Hsp110 is ubiquitously expressed, with both cytosolic and nuclear distribution in a tissue-dependent manner. Functionally, while Hsp110 is dispensable for cell proliferation in developing larvae, it is essential for long-term cell survival and normal development of the nervous system, including non-autonomous effects on neuronal differentiation and glial cell migration. Furthermore, despite being identified as a potent suppressor of protein aggregation and neurotoxicity in multiple neurodegenerative diseases, higher levels of Hsp110 are detrimental in flies. Overexpression of Hsp40, another key co-chaperone of Hsp70, can mimic this effect. However, simultaneous overexpression of both Hsp40 and Hsp110 does not further exacerbate their detrimental effect. Together, these results demonstrate a critical role of Hsp110 in neuronal development and cell survival, and further suggest that in vivo, the levels and activities of Hsp110 and Hsp40 co-chaperones need to be properly balanced. Furthermore, this work supports the contention that the Hsp70 chaperone network must be considered as a whole when targeted for potential therapeutic purposes to meet the complex pathophysiological demands in multicellular organisms.

developmental biology↗

Fibulin-4 is highly expressed in metastatic breast cancer and can serve as a target of peptide-based imaging probes and experimental therapeutics

We have previously reported a cyclic peptide CRAGVGRGC (termed BLMP6) that homes to disseminating tumor cells in mouse cancer models and could be used for metastasis detection and intervention. Here, based on BLMP6 similarity to latent transforming growth factor beta binding protein 4 (LTBP4), we discovered fibulin-4 as a BLMP6 target. We show that BLMP6 mimics the LTBP4 domain binding to fibulin-4 and selectively binds to fibulin-4 in vitro. Fibulin-4 knockout in mouse 4T1 cancer cells abrogated BLMP6 homing to lung metastases. Fibulin-4 expression was found to be increased in invasive and metastatic human breast cancer. AZDye555 fluorophore-labeled BLMP6 was developed as a reagent selectively binding to invasive and metastatic human breast cancer cells in tissue sections and homing to MDA-MB-231 metastases in mice. We show that radiolabeling BLMP6 with 68Ga can be used for the detection of MDA-MB-231 metastases. We designed a peptide-drug conjugate consisting of monomethyl auristatin E (MMAE) and BLMP6 that preferentially kills aggressive cancer cells. Cytotoxicity of MMAE-BLMP6 against MDA-MB-231 tumors was confirmed in vivo. In an immunocompetent mouse model of B16F10 experimental lung metastases, treatment with MMAE-BLMP6 suppressed metastasis growth and improved survival. There was also a trend for metastasis suppression and survival improvement in the MDA-MB-231 experimental metastasis model. Our results suggest that fibulin-4 and BLMP6 may be further developed for the detection and targeting of metastatic human cancers. Statement of significanceThis study identifies fibulin-4 as a protein highly expressed in breast cancer metastasis. It evaluates the application of peptide conjugates targeting fibulin-4 in mouse models as non-invasive probes for metastasis detection and cytotoxic drug delivery.

cancer biology↗

POU6F2 mutation identified in humans with pubertal failure shifts isoform formation and alters GnRH transcript expression

Idiopathic hypogonadotropic hypogonadism (IHH) is characterized by absent pubertal development and infertility, often due to gonadotropin-releasing hormone (GnRH) deficits. Exome sequencing of two independent cohorts of IHH patients identified 12 rare missense variants in POU6F2. POU6F2 encodes two distinct isoforms. In mouse, pituitary and gonads expressed both isoforms, but only isoform1 was detected in GnRH cells. Although the function of isoform2 is well known, using bioinformatics and cells assays on a human-derived GnRH cell line, we demonstrate isoform1 can also act as a transcriptional regulator, decreasing GNRH1 expression. The impact of two POU6F2 variants (MT1 and MT2) was then examined. MT1, but not MT2, reduced transcriptional activity of either isoform, preventing Hes5 promoter activation by isoform2 and repression of GnRH transcripts by isoform1. GnRH transcription increases as the cells migrate into the brain. Augmentation earlier can disrupt normal GnRH cell migration, consistent with POU6F2 variants contributing to IHH pathogenesis.

genetics↗