scRNAseq Demands You to Be a Researcher, Coder, and Innovator
Via Foundry makes it possible to excel in all three without the complexity Single-cell RNA...
Biological data has exploded in volume and complexity, pushing all biologists to become data scientists.
This shift diverts their focus from scientific discovery to data management and analysis. ViaScientific’s platform Foundry is transforming this landscape by handling biological data 20 times more efficiently, allowing scientists to return to their core expertise.
Historically, biologists managed their data in notebooks, manually recording observations and experiments. The advent of computers revolutionized this process, making data tracking and basic computations easier. However, as biological research advanced, the data generated grew exponentially, and traditional data management tools couldn’t keep up.
Today, biologists often spend more time on data processing than on generating new scientific ideas. Complicated, time-consuming and error prone processes hinder reproducibility and progress. When new ideas emerge, researchers often find themselves starting from scratch. Biology turns into a frustrating waiting game.
To tackle the data overflow, a new profession emerged: bioinformatics. These experts specialize in managing and analyzing biological data using computational tools. Yet even skilled bioinformaticians face the same challenges. The complexity and scale of data can overwhelm manual approaches, leading to inefficiencies and reproducibility gaps.
Recognizing the need for change, scientists at UMass Chan Medical School developed Foundry for over a decade — a platform born from their own research needs. This initiative led to the founding of Via Scientific Inc., which today offers Via Foundry as the world’s most advanced multi-omics platform. Via Foundry combines artificial intelligence, user-friendly interfaces, and reproducibility principles to revolutionize data analysis.
A recent study¹ published in Briefings in Bioinformatics (Volume 25, Issue 3, May 2024) emphasizes the importance of reproducibility in adaptive immune receptor repertoire sequencing (AIRR-seq) data analysis. The study, authored by Ayelet Peres and colleagues, provides guidelines for achieving reproducibility using Via Foundry.
The FAIR principles — Findability, Accessibility, Interoperability, and Reusability — are important for data sharing and analysis. Via Foundry helps researchers follow these principles, making it easier to find, access, share, and reuse analysis pipelines.
AIRR-seq data reveals important information about the immune system’s response to infections, diseases, and vaccines. However, analyzing this data is challenging:
Via Foundry addresses these challenges:
Via Foundry also helps scientists meet regulations required by funding agencies like the NIH, which mandates a data management plan for all funding applicants. Here’s how Via Foundry supports this:
With platforms like Via Foundry, biologists can focus on their research without needing to become full-time data scientists. Adopting FAIR principles and prioritizing reproducibility will lead to more groundbreaking discoveries. The future of biology is bright, with efficient, transparent workflows overcoming data challenges.
1. Guidelines for Reproducible Analysis of Adaptive Immune Receptor Repertoire Sequencing Data by Ayelet Peres, Vered Klein, Boaz Frankel, William Lees, Pazit Polak, Mark Meehan, Artur Rocha, João Correia Lopes, Gur Yaari, Briefings in Bioinformatics, Volume 25, Issue 3, May 2024, bbae221
Via Scientific Inc., a Cambridge-based tech and AI company, has launched Via Foundry, a multi-omics accelerator platform designed to advance scientific breakthroughs. Via Foundry automates complex data tasks with features like drag-and-drop pipelines and customizable analytics, ensuring data is shareable, reusable, and reproducible, allowing researchers to focus on scientific insights instead of code. Via Scientific supports biotech, pharma, research institutes, and universities.
Via Foundry makes it possible to excel in all three without the complexity Single-cell RNA...
Via Foundry makes it possible to excel in all three without the complexity Single-cell RNA...
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The criticality of seamless collaboration in research The fields of medical science, life sciences, and...
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