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August 2022

PathPresenter a tool to make killer pathology presentations and much more w/ Rajendra Singh, MD

2025-05-06T13:40:04+00:00

Today I am joined by Rajendra Singh, MD, the creator of the PathPresenter platform. He tells us the story behind the platform and how we can start using PathPresenter for free now!

PathPresenter a tool to make killer pathology presentations and much more w/ Rajendra Singh, MD2025-05-06T13:40:04+00:00

Paige Announces Partnership with Sonora Quest Laboratories to Accelerate Precision Diagnostics for Patients Across Arizona

2022-08-17T20:18:44+00:00

Under the partnership, Paige will provide Sonora Quest with the complete suite of Paige’s AI-enabled digital pathology solutions, including the FullFocus® viewer, Paige Prostate Detect and Paige Breast. Paige Prostate Detect is the first AI-based pathology product to receive de novo marketing authorization from the FDA, allowing in vitro diagnostic (IVD) use via Paige’s FDA-cleared FullFocus® digital pathology viewer.

Paige Announces Partnership with Sonora Quest Laboratories to Accelerate Precision Diagnostics for Patients Across Arizona2022-08-17T20:18:44+00:00

AI Model Accurately Shows Presence and Location of Cancer in Pathological Images

2022-08-15T11:08:49+00:00

Scientists at Daegu Gyeongbuk Institute of Science and Technology (DGIST, Daegu, Korea) developed the weakly supervised learning model that zones cancer sites with only rough data such as 'whether the cancer in the image is present or not' is under active study.

AI Model Accurately Shows Presence and Location of Cancer in Pathological Images2022-08-15T11:08:49+00:00

Paige and Perspectum combine AI digital pathology tools in bid to improve clinical trials

2022-08-11T11:45:07+00:00

In a tongue twister of a collaboration, partners Paige and Perspectum plan to pool pathology tools to progress prospective studies.Both companies are developing artificial intelligence-powered software that analyzes standard tissue samples to help pathologists make more accurate diagnoses and guide treatment. Paige’s work so far has focused on designing algorithms to detect breast and prostate cancers, while Perspectum has found success in its own liver-scanning program.By combining their technologies, Paige and Perspectum are aiming to improve pathology workflows in late-stage clinical trials. Their software platforms will give researchers easier access to automated tissue analysis and also help identify more significant biomarkers in those analyses to guide research.In the partnership, Perspectum will offer up its digital pathology software. The cloud-based portal was designed specifically for use in clinical trials and combines Perspectum’s imaging technology with pathology lab ProPath’s analysis to provide a one-stop shop for imaging, analysis and data management.That software will integrate with Paige’s platform, which uses machine learning algorithms trained on millions of tumor slides to detect signs of cancer and identify areas of interest in imaging data and discover potential new biomarkers to guide treatment options.The collaboration will focus largely on improving clinical studies of solutions to diagnose and treat liver disease, according to Paige CEO Leo Grady. He added, “Through this partnership, we will work with Perspectum to expand the use of our technology and products for life sciences.”At the core of Paige’s platform is the FullFocus viewer, which can be used by researchers and pathologists to navigate and examine surgical tissue images generated by standard commercial whole slide imaging scanners. FullFocus was cleared by the FDA in July 2020.Since then, Paige has tacked on further regulatory approvals for its tumor-specific offerings, receiving two CE marks in late 2020 for its AI-powered breast and prostate cancer tools.The first of these scans breast tissue biopsies to spot possible signs of cancer, while also factoring in each individual patient’s medical history to ensure it sends out only the most accurate alerts to oncologists. The prostate cancer software focuses on the later stages of cancer treatment, grading known malignant tumors to predict the cancer’s progression and help care teams determine the most effective treatment plan.Perspectum, meanwhile, has also found recent regulatory success. Earlier this year, the U.K.-based startup secured 510(k) clearance from the FDA for Hepatica, its automated liver analysis software.Hepatica uses AI to read and delineate MRI images, providing measurements of a liver’s size, inflammation and fat content to help surgeons remove only as much tissue as necessary to treat liver cancer. The software also analyzes the liver as a whole to predict how patients will fare after surgery.SOURCE: Fierce Biotech

Paige and Perspectum combine AI digital pathology tools in bid to improve clinical trials2022-08-11T11:45:07+00:00

Digital Pathology May Help Explain the Clinical Significance of Intratumoral Bacteria in Patients with Nasopharyngeal Carcinoma

2022-08-10T16:05:59+00:00

The microbiota, especially gut bacteria, play a key role in shaping the immune system and modulating immunological responses against invading pathogens and cancer cells. Recently, the extensive interactions between microbiota and cancer cells and the role of the microbiota-tumor interplay in tumor progression have been discovered. Although the gut microbiota has emerged as an attractive biomarker for predicting survival and treatment response in patients with various cancer types, little is known about the prognostic role of intratumoral microbiota in patients with nasopharyngeal carcinoma.

Digital Pathology May Help Explain the Clinical Significance of Intratumoral Bacteria in Patients with Nasopharyngeal Carcinoma2022-08-10T16:05:59+00:00

Deep Bio successfully integrates DeepDx® Prostate algorithm into HALO AP® platform from Indica Labs

2022-08-10T03:33:21+00:00

DeepDx® prostate algorithm results shown in the HALO AP® platform. Deep Bio successfully integrates DeepDx® Prostate algorithm into HALO AP® platform from Indica Labs SEOUL, South Korea and ALBUQUERQUE, N.M., Aug. 9, 2022 /PRNewswire/ -- Deep Bio, a company concentrating on SaMD (Software as a Medical Device) for digital pathology, offering clinically validated, AI-based DeepDx® algorithms, and Indica Labs, a leading [...]

Deep Bio successfully integrates DeepDx® Prostate algorithm into HALO AP® platform from Indica Labs2022-08-10T03:33:21+00:00

New AI models facilitate the integration of data types to improve cancer patient prognostics

2022-08-09T11:46:39+00:00

While it’s long been understood that predicting outcomes in patients with cancer requires considering many factors, such as patient history, genes and disease pathology, clinicians struggle with integrating this information to make decisions about patient care. A new study from researchers from the Mahmood Lab at Brigham and Women’s Hospital reveals a proof-of-concept model that uses artificial intelligence (AI) to combine multiple types of data from different sources to predict patient outcomes for 14 different types of cancer. Results are published in Cancer Cell.Experts depend on several sources of data, like genomic sequencing, pathology, and patient history, to diagnose and prognosticate different types of cancer. While existing technology enables them to use this information to predict outcomes, manually integrating data from different sources is challenging and experts often find themselves making subjective assessments.“Experts analyze many pieces of evidence to predict how well a patient may do,” said Faisal Mahmood, Ph.D., an assistant professor in the Division of Computational Pathology at the Brigham and associate member of the Cancer Program at the Broad Institute of Harvard and MIT. “These early examinations become the basis of making decisions about enrolling in a clinical trial or specific treatment regimens. But that means that this multimodal prediction happens at the level of the expert. We’re trying to address the problem computationally.”Through these new AI models, Mahmood and colleagues uncovered a means to integrate several forms of diagnostic information computationally to yield more accurate outcome predictions. The AI models demonstrate the ability to make prognostic determinations while also uncovering the predictive bases of features used to predict patient risk—a property that could be used to uncover new biomarkers.Researchers built the models using The Cancer Genome Atlas (TCGA), a publicly available resource containing data on many different types of cancer. They then developed a multimodal deep learning-based algorithm which is capable of learning prognostic information from multiple data sources. By first creating separate models for histology and genomic data, they could fuse the technology into one integrated entity that provides key prognostic information. Finally, they evaluated the model‘s efficacy by feeding it data sets from 14 cancer types as well as patient histology and genomic data. Results demonstrated that the models yielded more accurate patient outcome predictions than those incorporating only single sources of information.This study highlights that using AI to integrate different types of clinically informed data to predict disease outcomes is feasible. Mahmood explained that these models could allow researchers to discover biomarkers that incorporate different clinical factors and better understand what type of information they need to diagnose different types of cancer. The researchers also quantitively studied the importance of each diagnostic modality for individual cancer types and the benefit of integrating multiple modalities.The AI models are also capable of elucidating pathologic and genomic features that drive prognostic predictions. The team found that the models used patient immune responses as a prognostic marker without being trained to do so, a notable finding given that previous research shows that patients whose tumors elicit stronger immune responses tend to experience better outcomes.While this proof-of-concept model reveals a newfound role for AI technology in cancer care, this research is only a first step in implementing these models clinically. Applying these models in the clinic requires incorporating larger data sets and validating on large independent test cohorts. Going forward, Mahmood aims to integrate even more types of patient information, such as radiology scans, family histories, and electronic medical records, and eventually bring the model to clinical trials.“This work sets the stage for larger health care AI studies that combine data from multiple sources,” said Mahmood. “In a broader sense, our findings emphasize a need for building computational pathology prognostic models with much larger datasets and downstream clinical trials to establish utility.”More informationFaisal Mahmood, Pan-Cancer Integrative Histology-Genomic Analysis via Multimodal Deep Learning, Cancer Cell (2022). DOI: 10.1016/j.ccell.2022.07.004. www.cell.com/cancer-cell/fullt … 1535-6108(22)00317-8Journal information: Cancer Cell

New AI models facilitate the integration of data types to improve cancer patient prognostics2022-08-09T11:46:39+00:00

Tribun Health Enters a Strategic Partnership With Mindpeak to Provide Pathologists With the Most Advanced AI Diagnostic Tool for Breast Cancer

2022-08-05T12:19:32+00:00

The European leader in software development for digital pathology, is pleased to announce a strategic partnership with Mindpeak, a global leader for pathology AI software with world-class industry experts in the development of artificial intelligence algorithms to provide precision and speed in clinical pathology.

Tribun Health Enters a Strategic Partnership With Mindpeak to Provide Pathologists With the Most Advanced AI Diagnostic Tool for Breast Cancer2022-08-05T12:19:32+00:00

Proscia’s Tools and Vision for Modern Pathology | Nathan Buchbinder

2025-05-06T13:41:02+00:00

Today my guest is Nathan Buchbinder, one of the co-founders and Chief Product Officer of Proscia. Listen to Proscia’s creation story, what tools they have to offer and how these tools can help your laboratory.

Proscia’s Tools and Vision for Modern Pathology | Nathan Buchbinder2025-05-06T13:41:02+00:00
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