Brownsville named the poorest city in America

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Brownsville named the poorest city in America

Hora estándar central – viernes, noviembre 08, 2013

Brownsville named the poorest city in America - Of Brownsville's 415,557 residents, 36 percent live below the poverty level, compared to just 10.8 percent in San Jose. Texas' overall poverty rate is 17 percent.

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