DOI: 10.1128/msystems.00564-26 ISSN: 2379-5077
Carbon starvation of
Mycobacterium abscessus
induces a non-replicating state with extensive proteomic remodeling
Kaylyn L. Devlin, Gyanu Lamichhane, William C. Nelson, Vivian S. Lin, Kimberly E. Beatty ABSTRACT
Mycobacterium abscessus
(
Mab
) is an opportunistic pathogen that can cause chronic, debilitating lung disease.
Mab
is intrinsically resistant to most antibiotics, making
Mab
infections challenging to manage and frequently incurable. During infection,
Mab
adapts to survive various stresses, including hypoxia and nutrient starvation.
In vitro
, these conditions drive
Mab
into a drug-tolerant, non-replicating state. Changes in the
Mab
proteome that result from entering a non-replicating state have been minimally described despite the clinical importance of this physiological state. Using
Mab
reference strain ATCC 19977, we collected proteomic data comparing replicating to non-replicating states using a carbon starvation (CS) model of persistence. We identified 2,251 proteins overall (45% proteome coverage), and 17% of these proteins were found in only one of the two conditions. A third of identified proteins were significantly changed in abundance, indicating an extensive proteomic response to CS. The response regulator DosR and many DosRS-responsive proteins were significantly more abundant under CS, suggesting that this response regulator plays a key role in CS-induced
Mab
persistence. Many aspects of cell wall biosynthesis were altered, including changes in glycolipid abundance under CS. Proteins involved in other key cellular processes such as secretion, oxidative phosphorylation, and nutrient metabolism were altered under CS. This proteomic analysis provides new insights and clarity into how the
Mab
proteome is regulated during non-replicating persistence, a key consideration for understanding
Mab
pathophysiology.
IMPORTANCE
Mycobacterium abscessus
(
Mab
) is a highly drug-resistant species of non-tuberculous mycobacteria (NTM). People most susceptible to pulmonary NTM infections are immunocompromised or have an existing lung disease, such as chronic obstructive pulmonary disease or cystic fibrosis. Infections with
Mab
cause chronic lung disease that is challenging to manage. Patients typically must take multiple antibiotics daily for at least a year. Despite aggressive treatment regimens, cure rates remain low. One reason for this is
Mab
’s ability to enter dormancy during chronic infections. The authors provide a first description of the proteomic remodeling that occurs in
Mab
in response to carbon starvation, which induces a non-replicating state. They report that a third of the proteome changes in response to carbon starvation, including pathways involved in cell envelope biosynthesis, energy production, and nutrient acquisition. The detailed description of these changes provides insights into the adaptations likely used by
Mab
to survive during infection.