Answer:
9.378*10^8
Explanation:
The number of phages in each cycle [tex]= 175[/tex]
The number of host infected in each cycle [tex]= 175[/tex]
The number of phages released by each hosts in each turn [tex]= 175[/tex]
There are total [tex]4[/tex] cycle .
So the total number of phages that exist in a single plaque if 3 more lytic cycles occur
[tex]= 175*175*175*175\\= 175^4\\= 9.378*10^8[/tex]
