paper-with-me

홈 › Papers

Cellular reproduction number, generation time and growth rate differ between human- and avian-adapted influenza strains

2019-03-19

When analysing in vitro data, growth kinetics of influenza strains are often compared by computing their growth rates, which are sometimes used as proxies for fitness. However, analogous to mechanistic epidemic models, the growth rate can be defined as a function of two parameters: the basic reproduction number (the average number of cells each infected cell infects) and the mean generation time (the average length of a replication cycle). Using a mechanistic model, previously published data from experiments in human lung cells, and newly generated data, we compared estimates of all three parameters for six influenza A strains. Using previously published data, we found that the two human-adapted strains (pre-2009 seasonal H1N1, and pandemic H1N1) had a lower basic reproduction number, shorter mean generation time and slower growth rate than the two avian-adapted strains (H5N1 and H7N9). These same differences were then observed in data from new experiments where two strains were engineered to have different internal proteins (pandemic H1N1 and H5N1), but the same surface proteins (PR8), confirming our initial findings and implying that differences between strains were driven by internal genes. Also, the model predicted that the human-adapted strains underwent more replication cycles than the avian-adapted strains by the time of peak viral load, potentially accumulating mutations more quickly. These results suggest that the in vitro reproduction number, generation time and growth rate differ between human-adapted and avian-adapted influenza strains, and thus could be used to assess host adaptation of internal proteins to inform pandemic risk assessment.

📄 PDF Abstract BibTeX arXiv:1903.08054

Code (1)

ada-w-yan/cellularfluparams 공식 구현

Similar Papers 제목 키워드 기반

Interspecific allometric scaling of unicellular organisms as an evolutionary process of food chain creation

2016-11-29

Metabolism of living organisms is a foundation of life. The metabolic rate (energy production per unit time) increases slower than organisms' mass. When this phenomenon is considered across different species, it is calle…

Molecular Diversity and Network Complexity in Growing Protocells

2019-04-17 · Atsushi Kamimura, Kunihiko Kaneko

A great variety of molecular components is encapsulated in cells. Each of these components is replicated for cell reproduction. To address an essential role of the huge diversity of cellular components, we study a model …

Diversity

The two-clock problem in population dynamics

2025-04-29 · Kaan Öcal, Michael P. H. Stumpf

Biological time can be measured in two ways: in generations and in physical time. When generation intervals differ between individuals, these two clocks diverge, which impedes our ability to relate mathematical models to…

Epidemiology

Increasing situational awareness through nowcasting of the reproduction number

2023-09-26 · Andrea Bizzotto, Giorgio Guzzetta, Valentina Marziano, Martina del Manso 외

The time varying reproduction number R is a critical variable for situational awareness during infectious disease outbreaks, but delays between infection and reporting hinder its accurate estimation in real time. We prop…

Permutation, Multiscale and Modified Multiscale Entropies a Natural Complexity for Low-High Infection Level Intracellular Viral Reaction Kinetics

2017-03-28

Viral infectious diseases, such as HIV virus growth, cause an important health concern. Study of intracellular viral processes can provide us to develop drug and understanding the drug dose to decrease the HIV virus in d…