Search bioRxiv⌕ Search

Biology subjects

Evangelisti, A.

Publications and source records attributed to Evangelisti, A..

3 recordsLinked to original sources

The role of inflammation in a humanized mouse model of transthyretin cardiac amyloidosis

BackgroundSystemic amyloidosis represents a group of protein-misfolding diseases that confer significant morbidity and mortality for millions of patients worldwide. Transthyretin cardiac amyloidosis (ATTR) is a particularly devastating amyloid disease that affects middle-aged and elderly individuals and leads to cardiomyopathy (ATTR-CM), which has a median survival of 2.5 to 3.5 years [1, 2]. ATTR-CM can be hereditary, leading to a more aggressive disease course in younger patients. The most prevalent TTR variant in the United States is V122I, which is found in 3-4 % of African Americans [3]. Despite the significant healthcare burden, ATTR-CM remains underdiagnosed due to a lack of disease awareness and limited diagnostic techniques [4]. Informative in vivo models have proven elusive during the past decade [5]. Moreover, there is no available treatment to reverse cardiac dysfunction due to amyloid fibril deposition [1, 6, 7]. Therefore, a better understanding of the molecular mechanisms of ATTR-CM is imperative to developing novel, effective therapies. Method and ResultsTo explore the pathogenesis of ATTR, we created a murine TTR knockout (TTR-KO) model expressing the human V122I TTR variant. To study the gender differences, both male and female TTR-KO mice were utilized in this study. Significant elevations of human TTR were observed in both male and female ATTR murine plasma post-injection 3 months (human TTR level (ng/ml) Male ATTR: 109.9 {+/-} 5.568; Male control: 28.17 {+/-} 7.010; p=0.0008, N=3 mice/group; Female ATTR: 127.5 {+/-} 32.43; Female control: 20.08 {+/-} 8.351; p=0.0327, N=3 mice/group) with preserved cardiac function (FS% Male ATTR: 26.07 {+/-} 3.667; Male control: 22.69 {+/-} 1.585; p=0.3712, N=6-8 mice/group; Female ATTR: 26.62 {+/-} 1.980; Female control: 31.25 {+/-} 4.482;p=0.3397, N=5-6 mice/group). Notably, the mouse model exhibited cardiac amyloid deposits confirmed by amyloidotic-specific Congo Red staining and Thioflavin T Staining. Transmission electron microscopy revealed both immature and mature amyloid fibrils in the extracellular matrix. RNA-sequencing of the ATTR mouse heart identified distinct transcriptomic patterns and conserved inflammation pathways similar to those seen in a cohort of human ATTR heart samples, including leukocyte transendothelial migration, T-cell receptor signaling, and apoptosis, along with upregulation of inflammatory markers CXCL-1/2/3 and CCL20, were observed in ATTR murine hearts. At the posttranslational level, we confirmed an increased level of CCL5 (MFI ATTR: 801 {+/-} 105; Control: 426{+/-} 64; p=0.0061, N=3 mice/group) in murine plasma post-injection 3 months by a luminance-based immunoassay. The CXCL- and CCL-chemokines family are critical for directing leukocytes to inflammation sites. ConclusionIn this study, we developed a humanized V122I ATTR mouse model with elevated circulating human TTR level and Congophilic amyloid deposits in the murine heart and kidneys. Our transcriptomic study suggested that inflammation may contribute to the ATTR-CM pathogenesis. Further studies are needed to decipher the precise interactions between inflammation and ATTR-CM. Highlights/Whats new/Clinical relevanceO_LIWe developed a humanized mouse model to replicate the multisystem complexity and clinical diversity associated with V122I ATTR-CM. C_LIO_LIOur study unveiled the pathogenic molecular mechanisms of amyloid deposition in ATTR-CM via a novel mouse model. C_LIO_LIWe identified signature inflammatory pathways that uncover potential therapeutic targets for ATTR-CM. C_LIO_LIOur ATTR mouse model allows for preclinical pharmacogenomic assessments of novel therapeutics, which will undoubtedly improve outcomes for ATTR-CM patients. C_LI

pathology↗

Leveraging CRISPR activation for rapid assessment of gene editing products in human pluripotent stem cells

Verification of genome editing in human pluripotent stem cells (hPSCs), particularly in silent locus is desirable but challenging because it often requires complex and time-intensive lineage-specific or tissue-specific differentiation to induce their expression. Here, we establish a rapid and effective workflow for the verification of hPSC lines with genome editing in unexpressed genes using CRISPR-mediated transcriptional activation (CRISPRa). We systematically compared the efficiency of various CRISPRa systems in hPSCs, identifying the SAM system as the most potent for activating silent genes in hPSCs. Furthermore, we demonstrated enhanced gene activation by combining the SAM system with TET1, a demethylation module. By inducing targeted gene activation in undifferentiated hPSCs using CRISPRa, we successfully verified single and dual reporter hPSC lines and conducted functional tests of dTAG knock-ins and silent gene knockouts within 48 hours. This approach eliminates the need for cell differentiation to access genes only expressed by differentiated cells, offering a handy assay for verifying gene editing in hPSCs.

cell biology↗

Human iPSC 4R tauopathy model uncovers modifiers of tau propagation

Tauopathies are age-associated neurodegenerative diseases whose mechanistic underpinnings remain elusive, partially due to lack of appropriate human models. Current human induced pluripotent stem cell (hiPSC)-derived neurons express very low levels of 4-repeat (4R)-tau isoforms that are normally expressed in adult brain. Here, we engineered new iPSC lines to express 4R-tau and 4R-tau carrying the P301S MAPT mutation when differentiated into neurons. 4R-P301S neurons display progressive Tau inclusions upon seeding with Tau fibrils and recapitulate features of tauopathy phenotypes, including shared transcriptomic signatures, autophagic body accumulation, and impaired neuronal activity. A CRISPRi screen of genes associated with Tau pathobiology identified over 500 genetic modifiers of Tau-seeding-induced Tau propagation, including retromer VPS29 and the UFMylation cascade as top modifiers. In AD brains, the UFMylation cascade is altered in neurofibrillary-tangle-bearing neurons. Inhibiting the UFMylation cascade suppressed seeding-induced Tau propagation. This model provides a powerful platform to identify novel therapeutic strategies for 4R tauopathy.

neuroscience↗