Abraham O. Smoot American Mormon pioneer

Abraham O. Smoot is a 80 years old American Mormon pioneer from Owenton, Kentucky. Abraham O. Smoot was born on February 17, 1815 (died on March 22, 1895, he was 80 years old) in Owenton, Kentucky as Abraham Owen Smoot.

Abraham O. Smoot, American Mormon pioneer

Birth Place:

Owenton, Kentucky

Country:

United States

Birthday:

February 17, 1815

Death Date:

March 22, 1895 (age 80)

Birth Sign :

Aquarius

About

His real name:
Birth name of Abraham O. Smoot is Abraham Owen Smoot

Is Abraham O. Smoot still alive?

No, he died on 03/22/1895, 129 years ago. He was 80 years old when he died. He died in Provo

Family

Children

He had three children, Reed (79, United States Senator from Utah) , Brigham (77, American Mormon missionary) and Ida (81) . When his first child, Reed Smoot, was born, Abraham O. Smoot was 46 years old.

What was Abraham's zodiac sign?

Abraham O. Smoot zodiac sign was aquarius.

Other facts about Abraham O. Smoot

Birth name	Abraham Owen Smoot
Place of birth	Owenton
Place of death	Provo
Given name	Abraham
Date of death	1895-03-22T00:00:00Z
Religion	The Church Of Jesus Christ Of Latter-day Saints
Country of citizenship	United States Of America

Abraham O. Smoot's Children (3)

Reed Smoot, 79

Brigham Smoot, 77

Ida Smoot Dusenberry, 81

Abraham O. Smoot Is A Member Of

Missionary

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