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Updated: Nov 11, 2025

A Neonatal Imaging Model of Gram-Negative Bacterial Sepsis
Published on: August 12, 2020
Modern diagnostic capabilities of neonatal screening for primary immunodeficiencies in newborns
Evgenia Olegovna Khalturina1,2, Natalia Dmitrievna Degtyareva1, Anastasiia Vasi'evna Bairashevskaia1
1Federal State Autonomous Educational Institution of Higher Education, I.M. Sechenov First Moscow State Medical University of the Ministry of Health of the Russian Federation (Sechenov University), Moscow, Russia.
Insights
Newborn screening for primary immunodeficiency (PID) allows early diagnosis, preventing severe infections and reducing infant mortality. Advances in screening technologies improve the identification of these rare genetic immune disorders.
Area of Science:
- Immunology
- Genetics
- Pediatrics
Background:
- Population screening of newborns is crucial for early disease detection.
- Primary immunodeficiency diseases (PIDS) are serious genetic disorders affecting immune function, often leading to severe infections, disability, and high mortality.
- Historically, PIDS diagnosis occurred after the onset of clinical symptoms and complications.
Purpose of the Study:
- To review current strategies for newborn screening programs for PIDS.
- To discuss novel approaches for early PIDS detection.
- To explore the role of next-generation sequencing in improving diagnostic accuracy for PIDS.
Main Methods:
- Review of existing PIDS screening program strategies.
- Discussion of screening methods based on T-cell receptor excision and kappa-recombination excision circles.
- Evaluation of next-generation sequencing for PIDS diagnosis.
Main Results:
- Modern laboratory technologies enable the identification of infants with severe PIDS, including those with T- and/or B-cell lymphopenia.
- Screening approaches like TREC and KREC analysis are utilized in PIDS programs.
- Next-generation sequencing holds potential for enhancing the diagnostic accuracy of PIDS.
Conclusions:
- Early identification of PIDS through newborn screening is vital for timely intervention and improved outcomes.
- Current and emerging screening technologies offer promising avenues for detecting PIDS in newborns.
- Continued research and implementation of advanced diagnostic tools are essential for managing PIDS effectively.
Abstract:
Population screening of newborns is an extremely important and informative diagnostic approach that allows early identification of babies who are predisposed to the development of a number of serious diseases. Some of these diseases are known and have effective treatment methods. Neonatal screening enables the early diagnosis and subsequent timely initiation of therapy. This helps to prevent serious complications and reduce the percentage of disability and deaths among newborns and young children. Primary immunodeficiency diseases and primary immunodeficiency syndrome (PIDS) are a heterogeneous group of diseases and conditions based on impaired immune system function associated with developmental defects and characterized by various combinations of recurrent infections, development of autoimmune and lymphoproliferative syndromes (genetic defects in apoptosis, gene mutation Fas receptor or ligand), granulomatous process, and malignant neoplasms. Most of these diseases manifest in infancy and lead to serious illness, disability, and high mortality rates. Until recently, it was impossible to identify children with PIDS before the onset of the first clinical symptoms, which are usually accompanied by complications in the form of severe coinfections of a viral-bacterial-fungal etiology. Modern advances in medical laboratory technology have allowed the identification of children with severe PIDS, manifested by T- and/or B-cell lymphopenia and other disorders of the immune system. This review discusses the main existing strategies and directions used in PIDS screening programs for newborns, including approaches to screening based on excision of T-cell receptors and kappa-recombination excision circles, as well as the potential role and place of next-generation sequencing technology to increase the diagnostic accuracy of these diseases.
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