trustme.bro/r/…
✓ checked
trust me, bro:
here is the receipt.
the claim
Offspring do not inherit mitochondrial DNA mutations from their fathers
the verdict
CONTESTED
contested - evenly split
refutedsupported
the weight of evidence
4 sources for · 1 against

While peer-reviewed sources and reference materials state that mitochondrial DNA is typically maternally inherited in humans and most mammals, research in certain species like the huon pine demonstrates that paternal inheritance of mitochondrial DNA does occur.

Evidence for · 4
2026 · cited by 0
Mitochondria play a fundamental role in human reproduction by supplying the energy required for key early reproductive processes. As mitochondrial Deoxyribonucleic acid (mtDNA) is maternally inherited, pathogenic mutations can lead to multisystem disorders that are transmitted to offspring. Mitochondrial replacement therapy (MRT) has emerged as a promising assisted reproductive approach to prevent the transmission of pathogenic mtDNA by replacing defective mitochondria with healthy donor mitochondria. There have been recent reports of successful MRT in humans. However, MRT remains a relatively new procedure and needs further experiments to establish its long-term safety and effectiveness. Overall, mitochondrial replacement therapy holds significant promise in helping families build healthier futures. This review explores the evolution of mitochondrial DNA modification in reproductive cells and addresses the associated ethical considerations, including acceptable clinical indications, reproductive choices, and long-term considerations for affected children.
Evidence against · 1
2026 · cited by 1
Abstract In conifers, plastid DNA is passed on through the male line (pollen grain). Transfer of mitochondrial DNA is maternal in the well-researched Pinaceae family (conifers I) and is considered mostly paternal in other conifer families (conifers II). However, few studies in confers II have definitely established the mode of transfer using molecular markers within species. This is the first molecular genetic study on organelle transfer in the Podocarpaceae family. Two intraspecific crosses of a rare Tasmanian podocarp, Lagarostrobos franklinii , were established with the same iconic father, which is a vegetative clone of a 11,000 year-old tree. Polymorphic positions in the parents’ genomes of one cross were identified using genome skimming and bioinformatics. Illumina data were compared with a published plastome and newly assembled mitochondrial DNA contigs representing about half of the father’s genome. Derived PCR-based markers were used to genotype parents and offspring of both crosses. Plastid DNA and mitochondrial DNA were both paternally inherited. We discuss other molecular genetic studies on mitochondral DNA transfer in conifers II, which all suggest paternal transfer. This could mean that this trait evolved only once, between 280 and 320 MYA, in the ancestor of this group.
See more details
The analysis

rails:sufficiency:supported:single_source:for=1+3p:against=0+1p:partial_opposition=1 | v55:sufficiency | v55:coherence_repaired:what=both

More for · 3
cited by 0
Mitochondrial inheritance in a mitochondrially mediated disease. Mendelian inheritance involves the transmission to successive generations of DNA contained in genes in the nucleus, but DNA is also contained in mitochondria, where it is believed to be responsible for the encoding of certain mitochondrial enzymes. Since nearly all mitochondrial DNA is maternally transmitted, one might expect a nonmendelian pattern of inheritance in mitochondrial cytopathy, a syndrome in which there are abnormalities in mitochondrial structure and deficiencies in a variety of mitochondrial enzymes. We studied the pedigrees of 6 affected families whose members we had examined personally and of 24 families described in the literature. In 27 families, exclusively maternal transmission occurred; in 3 there was also paternal transmission in one generation. Altogether, 51 mothers but only 3 fathers had transmitted the condition.
cited by 0
Interestingly, sperm contribute only DNA at fertilization —not cytoplasm. Therefore, the cytoplasm and all of the cytoplasmic organelles in the developing embryo are of maternal origin. This includes mitochondria, which contain their own DNA. Scientific research in the 1980s determined that mitochondrial DNA was maternally inherited, meaning that you can trace your mitochondrial DNA directly to your mother, her mother, and so on back through your female ancestors. When we talk about human DNA, we’re usually referring to nuclear DNA; that is, the DNA coiled into chromosomal bundles in the nucleus of our cells. We inherit half of our nuclear DNA from our father, and half from our mother. However, mitochondrial DNA (mtDNA) comes only from the mitochondria in the cytoplasm of the fat ovum we inherit from our mother. She received her mtDNA from her mother, who got it from her mother, and so on. Each of our cells contains approximately 1700 mitochondria, with each mitochondrion packed with mtDNA containing approximately 37 genes. Mutations (changes) in mtDNA occur spontaneously in a somewhat organized pattern at regular intervals in human history.
cited by 0
same DNA repair pathways as nuclei do—but not all of them; therefore, mutations occur more frequently in mitochondrial DNA than in nuclear DNA (see Mutation Mitochondrial disease is a group of genetic disorders caused by mitochondrial dysfunction. Mitochondria are the organelles that generate energy for the cell and are found in every cell of the human body except red blood cells. They convert the energy of food molecules into the ATP that powers most cell functions. Mitochondrial diseases take on unique characteristics both because of the way the dis Nuclear DNA has two copies per cell (except for sperm and egg cells), one copy being inherited from the father and the other from the mother. Mitochondrial DNA, however, is inherited from the mother only (with some exceptions) and each mitochondrion typically contains between 2 and 10 mtDNA copies. During cell division the mitochondria segregate randomly between the two new cells. Those mitochondria make more copies, normally reaching 500 mitochondria per cell. As mtDNA is copied when mitochondria proliferate, they can accumulate random mutations, a phenomenon called heteroplasmy. If only a few of the mtDNA copies inherited from the mother are defective, mitochondrial division may cause most of the defective copies to end up in just one of the new mitochondria (for more detailed inheritance patterns, see human mitochondrial genetics). Mitochondrial disease may become clinically apparent once the number of affected mitochondria reaches a certain level; this phenomenon is called "threshold expression". Mitochondria possess many…
This receipt carries no identity, shared or not. Sharing publishes your connection to it, not your data.
Check your own claim
Challenge the receipt
trust me, bro: win the argument, pass the class, survive peer review.
This receipt is an automated verdict against our published method · not an opinion about any author or publication.
Terms · Privacy · How verdicts work · Dispute this receipt