Integrated Biological and Computational Low-Dose Radiation Research
Sector: Commercial • Location: United States of America
Source: Grants.gov
DOE SC program in Biological and Environmental Research (BER) hereby announces its interest in development of integrated biological and computational research to gain a mechanistic understanding of the effects of low dose radiation exposure on cellular functions. The long-term goal is to build on the understanding of radiation effects on cellular function and establish comprehensive datasets amena
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Participants
Sponsoring Agency | Obfuscated Data |
Company | Obfuscated Data |
Status
Original status | closed |
Taiyo status | Obfuscated Data |
Taiyo last update | 00-00-0000 |
Available timestamps | 00-00-0000 |
Available timestamp type | Obfuscated Data |
Contact
Contact name | Obfuscated Data |
Phone | 0000000000 |
ObfuscatedData@email.com | |
Address | Obfuscated Data, Obfuscated data, obfuscated data, Obfuscated data |
Description
Description | DOE SC program in Biological and Environmental Research (BER) hereby announces its interest in development of integrated biological and computational research to gain a mechanistic understanding of the effects of low dose radiation exposure on cellular functions. The long-term goal is to build on the understanding of radiation effects on cellular function and establish comprehensive datasets amenable to incorporation into increasingly capable AI/ML models to identify both transient and persistent changes in cellular metabolism that may be linked to adverse health outcomes. This announcement builds on BER’s past efforts in low dose radiation research but seeks to take advantage of rapid technological changes in high throughput genomics, ‘omics and computational (Artificial Intelligence and Machine Learning [AI/ML]) technologies in recent years to advance a more mechanistic understanding of low dose and low dose rate effects on cellular metabolism. Developing a large compendium of high-quality datasets coupled with advances in AI/ML computational techniques trained on such data and integrated within the larger scientific literature on cellular processes affords the ability to explore a more mechanistic understanding of the impact low dose radiation has on cellular function. Over the long-term, this approach can provide a mechanistic basis for identifying markers and/or patterns in altered cellular function that may be indicative of or associated with an adverse health outcome. These approaches may also provide new insights into the uncertainties of health effects seen in epidemiological studies due to low dose radiation exposure and provide a basis to explore links to health effects other than cancer. |
Original sub-sector | Obfuscated |
Original Currency | USD |
Original budget | 000000000000000 |
Procurement method | Obfuscated Data |
Budget | 000000000000000 |
Location
Region | Obfuscated |
Country | Obfuscated |
State | Obfuscated Data |
County | Obfuscated |
Location | Obfuscated Data, Obfuscated data, obfuscated data, Obfuscated data |
Source
Source reliability | High |
Data quality score | 100% |
Source | Obfuscated Data |
URL | obfuscated_data,obfuscateddata.com |
More Details
Project Type | Obfuscated Data |
Article Published Date | Obfuscated Data |
